Patent application title: RECOMBINANT VACCINE AGAINST JAPANESE ENCEPHALITIS VIRUS [JEV] INFECTION AND A METHOD THEREOF
Inventors:
Sudhanshu Vrati (New Delhi, IN)
IPC8 Class: AC12N702FI
USPC Class:
435239
Class name: Chemistry: molecular biology and microbiology virus or bacteriophage, except for viral vector or bacteriophage vector; composition thereof; preparation or purification thereof; production of viral subunits; media for propagating recovery or purification
Publication date: 2010-12-30
Patent application number: 20100330650
Claims:
1-20. (canceled)
21. A method of preparing a recombinant adenovirus (RAdR5) vaccine (ECACC Accession Number 04121701) to protect against Japanese encephalitis virus (JEV) infection, wherein said vaccine produces secretory envelop protein (Es) of JEV, said method comprising the steps of:a) digesting plasmid pMEs from Japanese encephalitis virus with restriction enzymes Kpn I and Bam HI to obtain cDNA encoding JEV proteins prM and Es,b) ligating the cDNA to adenovirus shuttle plasmid pShuttle digested with restriction enzymesKpn I and Hind III at the Kpn I end,c) adding nucleotides at the free Bam HI and Hind III ends with T4 DNA polymerase to create blunt ends,d) ligating the blunt ends together to yield shuttle plasmid pSEs with JEV cDNA encoding the proteins prM and Es,e) digesting the shuttle plasmid pSEs with restriction enzymes I-Ceu I and Pl-Sce Ito obtain expression cassette containing the JEV cDNA together with the CMV promoter/enhancer and BGH polyadenylation signal,f) ligating the digested shuttle plasmid with I-Ceu I and Pl-Sce I digested adenovirus plasmid pAdeno-X to generate plasmid pAdEs containing Es expression cassette,g) digesting the plasmid pAdEs with Pac I,h) transfecting the monolayers HEK 293 cells with digested plasmid pAdEs for about one week, andi) obtaining the recombinant virus RAdEs vaccine.
22. A method as claimed in claim 21, wherein the transfection is at about 37.degree. C.
23. A method as claimed in claim 21, wherein the JEV proteins are under the control of human CMV IE promoter/enhancer.
Description:
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001]This application is a divisional of application Ser. No. 10/585,042 filed on Mar. 7, 2007, which is a 371 of International Application IN2004/000432 filed on Dec. 30, 2004, which designated the U.S., claims the benefit thereof and incorporates the same by reference.
FIELD OF THE INVENTION
[0002]The present invention relates to a method of preparing a novel recombinant adenovirus (RAdEs) vaccine to protect against Japanese encephalitis virus (JEV) infection. Also, it relates to a method of immunization and to the vaccine per se.
BACKGROUND AND PRIOR ART REFERENCES OF THE INVENTION
[0003]Japanese encephalitis virus (JEV) is a member of the flaviviridae family of animal viruses that consists of several viruses of immense medical significance such as those causing dengue and yellow fever. JEV, transmitted to human beings by mosquitoes, is responsible for an acute infection of the central nervous system resulting in encephalitis. The virus is active over a vast geographic area covering India, China, Japan and virtually all of the South-East Asia. Approximately 3 billion people live in JEV endemic area and up to 50,000 cases of JEV infection are reported every year, of which, about 10,000 cases result in fatality and a high proportion of survivors end up having serious neurological and psychiatric sequel (45). A mouse brain-grown, formalin-inactivated JEV vaccine is available internationally. However, this vaccine has limitations in terms of its high cost of production, lack of long-term immunity and risk of allergic reaction due to the presence of the murine encephalogenic basic proteins or gelatin stabilizer (1, 33, 38, 39). There is, thus, an urgent need to develop an improved vaccine against JEV and several potential vaccines are currently being investigated in various laboratories (16).
[0004]JEV contains a single-stranded, plus-sense RNA genome of ˜11 Kb. It consists of a single open reading frame that codes for a large polyprotein of 3432 amino acids which is co- and post-translationally cleaved into three structural (capsid, C; pre-membrane, prM; and envelope, E) and seven non-structural proteins (NS1, NS2A, NS2B, NS3, NS4A, NS4B and NS5) (5, 44). In flaviviruses, E protein is involved in a number of important functions related to virus infection such as receptor binding and membrane fusion (26). Antibodies to the E protein were shown to neutralize virus activity in vitro as well as in vivo since passive administration of monoclonal antibodies to the E protein protected mice with JEV infection (17). Furthermore, sub-viral particles consisting of only the prM and the E proteins were highly effective in generating protective immune response in mice against JEV (18, 25). Chen et al. (7) examined the potential of various JEV structural and non-structural proteins for vaccine development. They concluded that the E protein was the single most important protein capable of inducing protective immunity against JEV. Accordingly, several plasmid vectors have been described synthesizing different forms of JEV E protein with or without prM protein and these provided protection of varying degree in mice against Japanese encephalitis (2, 6, 15, 20).
[0005]In recent years, adenoviruses have shown great promise as vectors for recombinant vaccine development (3, 4, 8, 13, 35, 41, 42, 49). Besides being safe, these viruses have been shown to induce effective humoral and cellular immune responses in experimental animals when delivered orally, intra-muscular (IM), intra-peritoneal or intra-nasal (3, 21, 24, 40, 41, 50). In the present invention, we constructed RAdEa expressing the prM and the full length JEV E protein since it is known to induce neutralizing immune response. However, adenovirus recombinant (RAdEa) synthesizing the full-length protein (Ea) did not grow well. Besides it induced poor immune response and very little JEV neutralizing antibodies. The full-length E protein is membrane anchored and removing the anchor signal from it is likely to make it soluble and perhaps more immunogenic.
[0006]On this premise, we truncated the Ea protein to remove 102-amino acid hydrophobic sequence from the C-terminus of the protein to generate a 398-amino acid Es protein. Recombinant adenovirus RAdEs synthesizing JEV prM and Es was found to grow very well in cultured cells and synthesize JEV E protein that was secreted into the medium. So, the removal of 102-amino acid hydrophobic sequence from the C-terminus of the protein played a critical role in smooth culturing of the recombinant. Even the inventors were pleasantly surprised with this effect.
[0007]Further, this recombinant adenovirus, synthesizing a novel form of JEV E protein that was secretory as opposed to the anchored protein in the normal course, was highly immunogenic in mice. RAdEs induced high titers of JEV neutralizing antibodies and protected the immunized mice against lethal JEV challenge demonstrating its potential use as a vaccine against JEV infection. The highly immunogenic effect of the recombinant helped achieve the desired results, which were long awaited by the scientific community.
[0008]The infection caused by JEV is fatal in nature and absence of long-term immunity had added to the problem. The allergic reactions to the known vaccine had further compounded the problem. However, administration of the vaccine of instant invention is been found to be absolutely safe and free from adverse effects.
OBJECTS OF THE INVENTION
[0009]The main object of the present invention is to develop a recombinant adenovirus (RAdEs) vaccine against JEV infection.
[0010]Another main object of the present invention is to develop an effective and superior method of immunization to Japanese encephalitis virus (JEV) infection.
[0011]Yet another object of the present invention is to develop a plasmid pAdEs of SEQ ID No. 1.
[0012]Still another object of the present invention is to develop a method of preparing a recombinant adenovirus (RAdEs) vaccine to protect against Japanese encephalitis virus (JEV) infection.
SUMMARY OF THE INVENTION
[0013]The present invention relates to development of a novel recombinant adenovirus (RAdEs) vaccine against Japanese encephalitis virus (JEV) infection.
DETAILED DESCRIPTION OF THE INVENTION
[0014]Accordingly, the present invention relates to a novel recombinant adenovirus (RAdEs) vaccine against JEV infection; an effective and superior method of immunization to Japanese encephalitis virus (JEV) infection; also, a plasmid pAdEs of SEQ ID No. 1; and lastly, a method of preparing the recombinant adenovirus (RAdEs) vaccine.
[0015]In the main embodiment of the present invention, it relates to a method of preparing a recombinant adenovirus (RAdEs) vaccine to protect against Japanese encephalitis virus (JEV) infection, wherein the said vaccine produces secretory envelop protein of JEV, said method comprising steps of: [0016]digesting plasmid pMEs with restriction enzymes Kpn I and Bam HI to obtain cDNA encoding JEV proteins prM and Es, [0017]ligating the cDNA to adenovirus shuttle plasmid pShuttle digested with restriction enzymes Kpn I and Hind III at the Kpn I end, [0018]filling nucleotides at the free Bam HI and Hind III ends with T4 DNA polymerase to create blunt ends, [0019]ligating the blunt ends together to yield shuttle plasmid pSEs with JEV cDNA encoding the proteins prM and Es, [0020]digesting the shuttle plasmid pSEs with restriction enzymes I-Ceu I and Pl-Sce Ito obtain expression cassette containing the JEV cDNA together with the CMV promoter/enhancer and BGH polyadenylation signal, [0021]ligating the digested shuttle plasmid with I-Ceu I and Pl-Sce I digested adenovirus plasmid pAdeno-X to generate plasmid pAdEs containing the Es expression cassette, [0022]digesting the plasmid pAdEs with Pac I, [0023]transfecting the monolayers of HEK 293 cells with digested plasmid pAdEs for about one week, and [0024]obtaining the recombinant virus RAdEs vaccine.
[0025]In another embodiment of the present invention, the transfection is at about 37° C. temperature.
[0026]In yet another embodiment of the present invention, the secretory proteins are under the control of human CMV IE promoter/enhancer.
[0027]In another main embodiment of the present invention, the invention relates to a recombinant adenovirus (RAdEs) vaccine.
[0028]In yet another embodiment of the present invention, the vaccine produces secretory envelop protein (Es) of JEV.
[0029]In still another embodiment of the present invention, the vaccine protects against Japanese encephalitis virus (JEV) infection.
[0030]In still another embodiment of the present invention, the vaccine is effective by intra-muscular route of administration.
[0031]In another main embodiment of the present invention, the invention relates to a plasmid pAdEs of SEQ ID No. 1.
[0032]In another main embodiment of the present invention, the invention relates to an effective and superior method of immunizing a subject in need thereof, to Japanese encephalitis virus (JEV) infection, said method comprising the step of administering a pharmaceutically effective amount of recombinant virus RAdEs vaccine optionally along with additive(s) to the subject intramuscularly.
[0033]In yet another embodiment of the present invention, the method shows 100% efficacy.
[0034]In still another embodiment of the present invention, the method helps protect subject against Japanese encephalitis.
[0035]In still another embodiment of the present invention, the subject is animal.
[0036]In still another embodiment of the present invention, the subject is a human being.
[0037]In still another embodiment of the present invention, the immunization activates both humoral and cell-mediated immune responses.
[0038]In still another embodiment of the present invention, the humoral response to the vaccine is antibody IgG1 type.
[0039]In still another embodiment of the present invention, the method leads to high amount of IFN-gamma secretion.
[0040]In still another embodiment of the present invention, the immunization leads to IL-5 secretion at moderate levels.
[0041]In still another embodiment of the present invention, increased amounts of RAdEs lead to higher immune response.
[0042]In still another embodiment of the present invention, the method is more effective than the commercially available vaccine.
[0043]Replication-defective recombinant adenoviruses (RAds) were constructed that synthesized the pre-Membrane (prM) and envelope (E) proteins of Japanese encephalitis virus (JEV). Recombinant virus RAdEa synthesized Ea, the membrane-anchored form of the E protein, and RAdEs synthesized Es, the secretory E protein. RAdEa replicated poorly in human embryonic kidney (HEK) 293A cells and 88-folds lower titers of the virus were obtained compared to RAdEs. RAdEa also synthesized lower amounts of E protein in HEK 293A cells as judged by radioimmunoprecipitation and immunofluorescence studies.
[0044]Mice were immunized intramuscular (IM) and orally with RAds. Oral route of virus delivery induced low titers of anti-JEV antibodies that had only little JEV neutralizing activity. IM immunizations with both RAdEa and RAdEs resulted in high titers of anti-JEV antibodies. Interestingly, RAdEa induced very low titers of JEV neutralizing antibodies whereas RAdEs inoculation resulted in high titers of JEV neutralizing antibodies. Splenocytes from mice immunized IM with RAds secreted large amounts of interferon-γ and moderate amounts of interleukin-5. These splenocytes also showed cytotoxic activity against JEV-infected cells. Mice immunized IM with RAdEs showed complete protection against the lethal dose of JEV given intra-cerebral.
BRIEF DESCRIPTION OF THE ACCOMPANYING DRAWINGS
[0045]FIG. 1 shows Growth of RAds in HEK 293A cells. Monolayers of HEK 293A cells in 35-mm tissue culture dishes were infected with RAds at a multiplicity of infection (MOI) of 1 and incubated at 37° C. in 3 ml culture medium. At 6 hr interval the cell monolayers were lysed in the culture medium by three cycles of freeze-thawing. The cell lysate was centrifuged to remove the debris and the supernatant assayed for adenovirus titers on HEK 293A cells. Shown in the figure are virus titers at various time points.
[0046]FIG. 2 shows Synthesis of JEV proteins in HEK 293A cells infected with RAds. HEK 293A cells were infected with JEV or RAds at a MOI of 1. Cells were labelled 24 hr later by growth in medium containing 35S-methionine and 35S-cystine. After labeling, culture supernatant (CS) and cells were harvested separately. Cells were washed with PBS before the cell lysate (CL) was made. CLs and CSs were used for immunoprecipitation of JEV proteins with mouse anti-JEV serum. The proteins were separated on a 12% SDS-polyacrylamide gel and autoradiographed. Lanes containing proteins precipitated from JEV-, RAdEa- or RAdEs-infected or uninfected cells have been identified. Position of JEV proteins has been indicated at the left. Ea, Es and prM proteins synthesized by RAds have been indicated. The values on the right are molecular size markers in kDa.
[0047]FIG. 3 shows Immunofluorescent staining of virus-infected cells. HEK 293A cells were infected with RAds or JEV at a MOI of 1. The cells were fixed and permeabilized 24 hr later and stained with mouse anti-JEV serum followed by FITC-conjugated goat anti-mouse-IgG. They were then observed under a microscope using ultra-violet light. Panel A, RAdEa-infected cells; panel B, RAdEs-infected cells; panel C, JEV-infected cells and panel D, uninfected cells.
[0048]FIG. 4 shows Antibody response in mice. BALB/c mice were immunized with RAdEa, RAdEs or with the vaccine by IM or oral route of inoculation. The dosages of the immunogens (in PFU for RAds) and the routes of inoculation have been indicated below the figure. *indicates oral immunization where virus was diluted in 100 mM Sodium bicarbonate buffer (pH 8.9). The primary immunization was followed by booster doses that were given 21 and 36 days later. Mice were bled at day 20, 28 and 44 post-immunization and sera stored at -70° C. Serial two-fold dilutions of sera (starting at 1:25) were assayed for the end-point anti-JEV antibody titers by ELISA. Shown above are mean end-point titers of sera obtained from immunized mice as indicated below the figure. The open bars represent titers on day 20, the gray bars represent titers on day 28 and black bars show titers on day 44 post-immunization.
[0049]FIG. 5 shows Isotype analysis of anti-JEV antibody produced by immunized mice. BALB/c mice were immunized with RAdEa, RAdEs or with the vaccine by IM or oral route of inoculation. The dosages of the immunogens (in PFU for RAds) and the routes of inoculation have been indicated below the figure. The primary immunization was followed by booster doses given 21 and 36 days later. Mice sera obtained on day 44 post-immunization were assayed for the end-point ELISA titers of anti-JEV IgG1 and IgG2a antibodies. Serial two-fold dilutions of sera (starting at 1:25) were assayed for the end-point titers. The ELISA titer was recorded as zero if the 1:25 dilution of sample was negative in ELISA. Shown in the figure are mean end-point titers of sera obtained from immunized mice as indicated below the figure. The open bars represent IgG1 titers and the gray bars represent IgG2a titers. The inverted triangle indicates zero mean titer.
[0050]FIG. 6 shows JEV neutralizing antibody response in mice. BALB/c mice were immunized with RAdEa, RAdEs or the vaccine by IM or oral route of inoculation. The dosages of the immunogens and the route of inoculation have been indicated at the top of the figure. The primary immunization was followed by booster doses given 21 and 36 days later. *indicates oral immunization where virus was diluted in 100 mM Sodium bicarbonate buffer. Mice were bled on day 44 post-immunization and sera stored at -70° C. Serial two-fold dilutions of sera (starting at 1:10) were assayed for end-point JEV neutralization titers by plaque reduction neutralization assays. Shown in the figure are mean JEV neutralization titers of serum samples from immunized mice.
[0051]FIG. 7 shows Cytokine production by splenocytes from immunized mice. BALB/c mice were immunized with RAdEa, RAdEs or the vaccine by IM or oral route of inoculation as indicated at the top of the figure. These mice were given two booster doses as described in the methods. One week after the second booster dose splenocytes from two mice (indicated by gray and black bars) from each immunization group were cultured in presence of JEV. Culture supernatants were collected each day and stored at -70° C. These were then assayed for IFN-γ, IL-4 and IL-5. Shown in the figure are the levels of IFN-γ and IL-5 in splenocyte cultures on various days after incubation with JEV. The days are numbered at the bottom of the panel.
[0052]FIG. 8 shows CTL activity in immunized mice. BALB/c mice were immunized with RAdEa or RAdEs by IM route of inoculation. These mice were given two booster doses as described in the methods. One week after the second booster dose splenocytes from two mice (indicated by gray and black bars) from each immunization group were cultured in presence of JEV for the generation of effector cells. Shown in the figure is the CTL activity of splenocytes at various ratios of effector cells to target cells (E:T) which are indicated at the bottom of the panels.
[0053]FIG. 9 shows Mice survival after challenge. Groups of 6-8 BALB/c mice were immunized with various dosages of RAdEa and RAdEs through IM or oral route. These mice received two booster doses of the immunogen on day 22 and 36 post-immunization. Mice were challenged on day 44 post-immunization with 100 LD50 (50%-lethal dose) of JEV given intra-cerebrally. Mice were observed for mortality for the next three weeks. Shown above is the percentage of surviving mice at a given time point. Immunogen dose and route of inoculation have been indicated. *indicates oral delivery of RAdEs along with the bicarbonate buffer.
[0054]The invention is further elaborated with the help of experimental data, as presented below in the form of examples. However, the examples should not be construed to limit the scope of the invention
Example-1
[0055]JEV and cells: The GP78 strain of JEV was used in these studies (44). The virus was grown in neonatal mouse brain. The brain from infected mice was homogenized as a 10% suspension in Eagle's minimal essential medium (EMEM). The suspension was centrifuged and filtered through 0.22 μm sterile filters. The virus was stored at -70° C. in aliquots. Virus titration was carried out by plaque assay on porcine stable kidney (PS) monolayers as described previously (43). Adenovirus was grown in human embryonic kidney (HEK) 293A cells (Quantum Biotechnologies Inc.) cultured in Dulbecco's modified Eagle's medium (DMEM) supplemented with 10% fetal calf serum (FCS).
Example-2
[0056]Construction of recombinant adenoviruses: Recombinant adenoviruses were constructed using the Adeno-X expression system (BD Biosciences) that utilized a ligation-based strategy for producing recombinant virus. Using this system a mammalian expression cassette containing the cDNA encoding JEV E protein was incorporated into a replication incompetent (E1/E3) human adenovirus type 5 (Ad5) genome. Two recombinant adenoviruses (RAds) were made; RAdEa, synthesizing JEV prM and the membrane-anchored E protein, and RAdEs, synthesizing prM and the secretory E protein. Plasmids pMEa and pMEs that contained the cDNAs encoding JEV prM and the membrane-anchored (Ea) or secretory E protein (Es), respectively have been described previously (15). Plasmid pMEa was modified by site-directed mutagenesis to contain an Afl II restriction site down-stream of the 3'-end of the JEV cDNA past the Bam HI site. The JEV cDNA encoding the prM and Ea proteins was excised from the mutated pMEa as a Kpn I-Afl II fragment and cloned at these sites in the adenovirus shuttle plasmid pShuttle (BD Biosciences) under the control of human cytomegalovirus (CMV) immediate early (IE) promoter/enhancer to yield plasmid pSEa. The shuttle plasmid pSEa contained the bovine growth hormone (BGH) polyadenylation signal downstream of the cloned JEV cDNA. The cDNA encoding prM and Es sequence was obtained by digesting pMEs with Kpn I and Bam HI. This cDNA fragment was ligated to the adenovirus shuttle plasmid, pShuttle, digested with Kpn I and Hind III at the Kpn I end. The free Bam HI and Hind III ends were nucleotide filled with T4 DNA polymerase and the blunt ends so created were ligated together to yield plasmid pSEs where JEV cDNA encoding prM and Es was under the control of human CMV IE promoter/enhancer. The shuttle plasmid pSEs contained the BGH polyadenylation signal downstream of the cloned cDNA. The junctions of the shuttle plasmid and the cDNA insert were sequenced to confirm the presence of the cDNA in correct frame. The plasmids pSEa and pSEs were digested with I-Ceu I and Pl-Sce Ito obtain the expression cassettes containing the JEV cDNA together with CMV promoter/enhancer and BGH polyadenylation signal. These were then ligated with I-Ceu I and Pl-Sce I digested adenovirus plasmid pAdeno-X (BD Biosciences) to generate plasmids pAdEa and pAdEs containing the Ea and Es expression cassettes, respectively. Monolayers of HEK 293A cells were transfected with Pac I digested pAdEa and pAdEs using Effectene (Qiagen) and incubated for a week at 37° C. By this time, RAd plaques had begun to show. The cell monolayers were harvested in culture supernatant, frozen-thawed thrice and centrifuged to obtain the released crude recombinant virus that was amplified once in HEK 293A cells and subjected to 2 rounds of plaque purification to obtain recombinant viruses RAdEa and RAdEs.
Example-3
[0057]Radioimmunoprecipitation: Synthesis of JEV proteins by RAdEa and RAdEs was studied by infection of HEK 293A cells followed by radiolabelling and immunoprecipitation. Briefly, monolayers of HEK 293A cells were infected with virus at a multiplicity of infection (MOI) of 1 and incubated at 37° C. After 24 hr, the cell monolayer was radiolabelled by growing in presence of 100 μCi of Easytag® EXpre35S35S protein labeling mix (NEN) for 4 hr. The culture supernatant was harvested and stored at -70° C. The monolayers were harvested in 500 μl of radioimmunoprecipitation assay buffer (10 mM Tris-HCl pH 8.0, 140 mM NaCl, 5 mM Iodoacetamide, 0.5% Triton X-100, 1% Sodium dodecyl sulphate (SDS), 1% Sodium deoxycholate, 2 mM Phenylmethylsulfonyl fluoride). Immunoprecipitation was carried out using mouse anti-JEV serum (ATCC) and Protein A Sepharose beads (Amersham). Immunoprecipitated proteins were electrophoresed on a 12% SDS-polyacrylamide gel that was dried before exposing to X-ray film for autoradiography.
Example-4
[0058]Immunofluorescent staining: Monolayers of HEK 293A cells were infected with RAdEa, RAdEs or JEV at a MOI of 1. The cells were fixed the next day with 2% Paraformaldehyde and permeabilized with 0.1% Triton-X 100. These cells were then stained by incubation with mouse anti-JEV serum (ATCC) followed by anti-mouse IgG-FITC conjugate (Dako) and observed under a microscope using ultra-violet light.
Example-5
[0059]Mice immunization and challenge experiments: All immunizations were carried out on 4-5-week-old inbred BALB/c mice. Each immunization group consisted of 6-8 mice. For IM immunizations, mice were injected in the hind legs with different amounts of RAds diluted in 100 μl phosphate-buffered saline (PBS) using a 30 G needle. Another group of mice was immunized with the mouse brain-derived, formalin-inactivated JEV vaccine manufactured by the Central Research Institute, Kasauli (India). Each mouse was given an IM injection of 100 μl of the vaccine that was 1/10th of the recommended adult human dose. For oral immunizations, water was withdrawn from the mice cages for 6-8 hr and then 200-400 μl virus diluted in PBS or 100 mM Sodium bicarbonate buffer (ph 8.9) was administered per oral using a mouse-feeding needle that had a small balloon at the point of the delivery. Two booster doses, given 3 and 5 weeks after the primary immunization, contained the same amount of immunogen as the primary dose. At 44 days post-immunization, mice were challenged with intra-cerebral inoculation of the lethal dose of JEV. These mice were observed for mortality for the next 3 weeks.
Example-6
[0060]Antibody assays: Titers of anti-JEV antibodies were assayed using an enzyme-linked immunosorbent assay (ELISA). An ELISA plate was coated with C6/36 cell-grown JEV overnight at 4° C. in 0.2 M Sodium carbonate buffer, pH 9.6 (36). The plate was washed with PBS containing 0.1% Tween-20 (PBS-T) thrice and the wells were blocked with 1% Lactogen in PBS-T at 37° C. for 2 hr. The plate was again washed with PBS-T thrice and incubated with 100 μl diluted mice sera per well at 37° C. for 1 hr. Serial two-fold dilutions of sera were assayed starting at a dilution of 1:25. The plate was then washed thrice with PBS-T and 100 μl anti-mouse antibody conjugated to horse radish peroxidase (HRP) (Dako), diluted 1:2000, was added per well, followed by incubation at 37° C. for 1 hr. The antibody-conjugate was removed by washing the plate thrice with PBS-T. The plate was then incubated in dark with 100 μl per well of the substrate o-Phenylenediamine dihydrochloride (0.5 mg/ml) prepared in citrate buffer (1% Citric acid and 1.46% Disodium hydrogen phosphate) at room temperature for 10 min. The reaction was stopped by adding 50 μl of 5 N Sulfuric acid. The absorbance was read at 492 nm in an ELISA plate reader (Spectramax). The reciprocal of the highest serum dilution giving an optical density at least twice that given by the reagent blanks was taken as the ELISA end-point.
[0061]The antibody isotyping ELISAs were carried out in a similar fashion, except that in place of anti-mouse IgG-HRP conjugate, anti-mouse IgG 1-HRP or the IgG2a-HRP conjugate (Pharmingen) was added. This was followed by the incubation with the substrate and color development as above.
Example-7
[0062]Plaque reduction neutralization assay: Two fold serial dilutions of sera from the immunized mice (starting from 1:10) were prepared in EMEM containing 5% FCS and antibiotics. Diluted sera were incubated at 56° C. for 30 min to inactivate the complement. The serum sample (100 μl) was then mixed with equal volume of JEV culture supernatant containing 100 plaque-forming units (PFU) of the virus. The virus-antibody mixture was incubated at 37° C. for 1 hr before adding to a 35-mm dish containing ˜70% confluent monolayer of PS cells. The plaque assay was carried out as described. (43). Percent neutralization was calculated by counting the number of plaques in the presence and the absence of the mouse serum. All assays were done in duplicates. Reciprocal of the highest serum dilution giving 50% neutralization was taken as the JEV neutralization titer.
Example-8
[0063]Cytokine ELISA: Spleen cell suspensions were prepared in RPMI 1640 supplemented with 10% FCS and 6×107 splenocytes were incubated with 3×107 PFU of JEV or E. coli-synthesized JEV E protein (10 μg/ml) in a 35-mm dish at 37 μC. Aliquots of culture supernatant were removed every day for the next 4 days and stored at -70° C. Interleukin (IL)-4, IL-5 and interferon (IFN)-γ were assayed using BD OptEIA kits (BD Biosciences) and as per the assay protocols.
Example-9
[0064]Cytotoxic T lymphocyte (CTL) assay: Standard 51Cr-release method as described previously (15) was used for the CTL assays with some modifications. Briefly, for preparation of the responder cells, 3×107 splenocytes were incubated for 4 days with 3×107 PFU of JEV in a 35-mm dish in RPMI 1640 medium supplemented with antibiotics, 0.5 mM β-Mercaptoethanol, 0.32 mg/ml L-Glutamine, 0.1 mg/ml non-essential amino acids, 0.12 mg/ml Sodium pyruvate and 5% FCS at 37° C. The cells thus generated were referred to as the effector cells. Virus-infected target cells were prepared by infecting P388D1 cells with JEV for 48 hr at a MOI of 1 followed by incubation with 100 μCi of Na251CrO4 (NEN) and subsequent washings to remove free 51Cr.
[0065]For carrying out the CTL assay, various numbers of effector cells were incubated at 37° C. for 6 hr with 2×104 51Cr-labelled virus-infected cells by briefly centrifuging them at 100 g for 4 min in a 96-well round bottom plate. At the end of the incubation period, 100 μl of cell-free supernatant was removed and the 51Cr release was counted using a gamma counter (LKB). Triplicate estimations were done in all the assays and the percentage lysis was calculated using the following formula. Percent lysis=[(cpm released in the presence of effector cells-cpm released due to spontaneous leakage)/(total cpm released by 0.2% Triton X-100 lysis-cpm released due to spontaneous leakage)]×100.
[0066]Statistical analysis: The statistical significance of different findings between mouse groups was determined by Student's t test. P<0.05 was considered to be significant.
Example-10
[0067]Replication of RAds and synthesis of JEV proteins: The JEV E protein is 500 amino acids long membrane-anchored protein. We have earlier shown that deletion of the C-terminal 102 amino acids of JEV E protein leads to efficient secretion of the truncated protein into the cell surroundings (15). We had also shown that quality of immune responses in mice induced by the secretory E protein were different from those induced by the membrane-anchored E protein (15). Besides, vaccinia recombinants expressing the secretory E protein of Japanese encephalitis or Dengue viruses devoid of the membrane anchor sequence were found to be highly immunogenic in mice (14, 27, 37). We, therefore, constructed two recombinants, RAdEa synthesizing prM and Ea (full-length membrane-anchored JEV E protein) and RAdEs synthesizing prM and Es (398 amino acid secretory E protein). The JEV prM was included in our constructs as its co-synthesis was necessary for correct processing and folding of the E protein (18, 25). The presence of appropriate JEV cDNA in genomes of RAds was established by polymerase chain reaction using JEV genome sequence-specific oligonucleotide primers.
[0068]Replication of RAds was studied in HEK 293A cells infected at a MOI of 1. FIG. 1 shows that a major burst in viral titers was observed both for RAdEa and RAdEs between 18 and 24 hr post-infection (PI) after which there was only a marginal increase in titers. RAdEs titer was ˜40-fold higher than that of RAdEa at 24 hr PI. Following the virus replication, the cytopathic effects were first visible at 30 hr PI for both RAdEa and RAdEs. The cytopathic effects had become highly pronounced by 42 hr PI when almost 80% cells had come off the surface of the tissue culture plates. At this time point titer of RAdEs was 1.2×107 PFU/ml, which was 88-times higher than that of RAdEa. These results showed that compared to RAdEs, RAdEa replicated poorly in HEK 293A cells. We studied four independent isolates of RAdEa and found all them to be slow growers.
[0069]The synthesis of JEV proteins by RAds was studied in HEK 293A cells that were infected with different viruses followed by radiolabelling and immunoprecipitation of JEV proteins using mouse anti-JEV serum. FIG. 2 shows that RAdEa-infected cell lysate had 2 proteins of apparent molecular masses of 51 and 23 kDa that corresponded with JEV E and prM proteins. None of these proteins were detectable in the culture supernatant of the infected cells. The RAdEs-infected cell lysate showed the synthesis of Es and prM proteins of apparent molecular masses of 45 and 23 kDa, respectively. The culture supernatant from the RAdEs-infected cells had a significant amount of Es, indicating that the E protein synthesized by RAdEs was secretory.
[0070]Use of increased amounts of anti-JEV antibody and Protein A Sepharose in immunoprecipitations did not result in precipitation of enhanced amounts of E protein indicating that the amounts of these reagents used were not limiting. Scanning of the autoradiograph with optically-enhanced densitometer using `Diversity One` software (version 1.6, PDI, New York) followed by calculations based on the volumes of the lysate or the supernatant loaded on the gel, suggested that the secretory E protein present in the culture supernatant constituted about 76% of the total E protein synthesized by RAdEs-infected cells. Furthermore, levels of total Es protein synthesis were around 20-fold higher than the levels of Ea protein. Immunofluorescent staining of RAdEa- and RAdEs-infected HEK 293A cells further confirmed that levels of Ea protein were significantly lower than that of the Es protein (FIG. 3). The lower levels of Ea synthesis may be related to the poor growth of RAdEa in HEK 293A cells.
[0071]We found that RAdEa synthesizing the membrane-anchored E protein grew slowly and achieved 88-fold lower titers in HEK 293A cells when compared with RAdEs synthesizing the secretory E protein. Infection of HEK 293A cells with the recombinants followed by radioimmunoprecipitation of JEV proteins showed that RAdEa synthesized lower amounts of JEV E protein. This was corroborated by the low levels of immunofluorescence on RAdEa-infected HEK 293A cells when compared with RAdEs-infected cells. HEK 293A cells support replication of E1-deleted RAds reported in this work as these cells contain Ad5 E1 transcription unit permanently integrated in them. In other mammalian cells these RAds are unable to replicate for the want of the E1 sequences. However, expression of the foreign gene does take place, which is under the independent control of the CMV IE promoter. We have studied expression of JEV E protein by RAds in PS cells by immunofluorescence and radioimmunoprecipitation. No significant differences were found in the levels of E protein synthesis in PS cells infected with RAdEa or RAdEs at a MOI of 1.
[0072]The adenovirus vector used in our studies had deletions in both the E1 and E3 transcription units that allow packaging of up to 8 Kb foreign DNA in the recombinant virus. The size of JEV expression cassette inserted in RAdEa was ˜3.3 Kb which was well within the packaging limits of the recombinant virus. The reason for lower titers of RAdEa in HEK 293A cells is, thus, not clear. Previously, we found no differences in the levels of expression of membrane-anchored or secretory E protein of JEV when HEK 293A cells were transfected with expression plasmids containing the Ea or Es genes under CMV IE promoter (15). This observation together with our results in the PS cells on E protein synthesis indicates that lower levels of E protein synthesis by RAdEa in HEK 293A cells are related to the low levels of its replication.
Example-11
[0073]Anti-JEV antibody response in mice immunized with RAds: Groups of BALB/c mice were immunized with RAdEa or RAdEs delivered orally or IM. The antibody response of these mice was compared with those immunized with formalin-inactivated commercial JEV vaccine. Serum samples collected from mice at various time points were assayed for anti-JEV end-point ELISA titers. FIG. 4 shows that anti-JEV antibodies were detectable in all immunization groups on day 20 post-immunization and these titers increased further on days 28 and 44 post-immunization following the booster doses. Compared to IM immunization, antibody titers were drastically low in mice immunized orally with RAds. For example, compared to oral immunization, 1×108 PFU of RAdEs given IM induced ˜60-fold higher antibody response on day 44. For both the oral as well as IM immunizations, higher antibody titers were obtained when higher doses of RAd were used. No significant differences were seen in day 44 anti-JEV antibody titers of mice immunized IM with 7.5×105 PFU of RAdEa or RAdEs. IM immunizations with RAds induced significantly higher antibody titers than those induced by IM inoculation of the vaccine. Thus, the lower dose of RAdEa and RAdEs (7.5×105 PFU) gave ˜60-fold higher antibody titers after the second booster when compared with the titers obtained with the vaccine. At the higher dose of 1×108 PFU, RAdEs induced ˜250-fold higher titers than the vaccine on day 44.
[0074]Some investigators have carried out oral immunization of mice with RAds using Sodium bicarbonate buffer to neutralize the acid pH of the stomach (11, 40, 47). However, there are others who have carried out oral immunization of mice with RAds without the use of any buffer (3, 9, 42, 48). We have compared the immunogenicity in mice of RAdEs given orally (1×108 PFU) with or without the bicarbonate buffer. FIG. 4 shows that no advantage was offered by the use of bicarbonate buffer during oral immunization with RAdEs. In fact, no effect of booster doses was seen when RAdEs was delivered orally using bicarbonate buffer and antibody titers on day 44 post-immunization were lower than in those mice that received the virus without bicarbonate buffer.
Example-12
[0075]Isotype analyses of anti-JEV antibody produced by immunized mice: In order to analyze the quality of immune responses generated by the RAds, end-point titers of anti-JEV IgG1 and IgG2a antibodies were determined by ELISA. FIG. 5 shows that at lower dose of RAds given orally (3×106 PFU) titers of anti-JEV IgG1 and IgG2a antibodies were below 25. When a higher dose of RAdEs (1×108 PFU) was given orally, the majority of antibodies were of IgG1 type; the ratio of IgG1/IgG2a titers in this case was 6.48 indicating a Th2 type of immune response. When RAds were delivered through IM route, the anti-JEV antibody response was almost exclusively of IgG1 type. In case of mice immunized IM with RAdEa (7.5×105 PFU), IgG1/IgG2a titer ratio was 68 and it was 64 in the case of RAdEs (7.5×105 PFU)-immunized mice. At higher dose of 1×108 PFU, RAdEs again induced predominantly IgG1 type of anti-JEV antibodies; the ratio of IgG1/IgG2a titers in this case was 25. These results indicated that RAdEa and RAdEs induced an almost exclusive Th2 kind of immune response in mice when delivered IM. The IM immunization of mice with the vaccine also induced IgG1 dominated antibody response indicating a Th2 type immune response.
Example-13
[0076]JEV neutralizing antibody response in mice immunized with Rads: Titers of JEV neutralizing antibodies were determined in serum samples obtained from the immunized mice at day 44 post-immunization. FIG. 6 shows that oral route of immunization induced very low JEV neutralizing antibodies. Similar to ELISA titers, the JEV neutralizing antibody titers were lower in mice immunized orally with RAdEs plus the bicarbonate buffer compared to titers in those mice immunized with RAdEs without the bicarbonate buffer, although the difference was statistically insignificant. Compared to RAdEa, RAdEs given IM induced higher JEV neutralizing titers and these were enhanced further when higher dose of virus was used for immunization. IM immunization with RAdEs induced significantly higher JEV neutralizing antibody titers than those induced by the vaccine.
Example-14
[0077]Cytokine secretion by splenocytes from immunized mice: Splenocytes prepared from the immunized mice were cultured in presence of JEV and synthesis of IFN-γ, IL-4 and IL-5 was studied on each day for the next 4 days. FIG. 7 shows that splenocytes from mice immunize with RAdEa or RAdEs by IM route secreted large amounts of IFN-γ. Splenocytes from mice immunized with the recombinant viruses through oral route made only small amounts of IFN-γ. Similarly, mice immunized with the vaccine made only small amounts of IFN-γ. Splenocytes from IM-immunized mice also made moderate amounts of IL-5 which was almost absent in the case of orally immunized mice or mice immunized with the vaccine. IL-4 was not detectable in any of the cases; the detection limit of IL-4 ELISA was 7.8 pg/ml. Similar pattern of cytokine secretion was observed when splenocytes were cultured in presence of JEV E protein
Example-15
[0078]CTL activity in immunized mice: To study the generation of memory CTLs, splenocytes from immunized mice were stimulated in vitro with JEV and examined for cytotoxic activity against cells infected with JEV. FIG. 8 shows the results of CTL assays at various effector to target cell ratios. Thus, mice immunized with RAdEa or RAdEs through IM route showed significant CTL activity. No CTL activity was detectable in mice immunized with RAdEa or RAdEs through oral route. Similarly, unimmunized and Ad5-immunized mice or those immunized with the vaccine showed no CTL activity.
Example-16
[0079]Mice challenge studies: Mice immunized with RAds were challenged at day 44 post-immunization by intra-cerebral inoculation of a lethal dose (100 LD50) of JEV. These mice were observed for mortality for 3 weeks after the challenge. All mice immunized with 7.5×105 or 1×108 PFU of RAdEs given IM survived the challenge while none of the unimmunized mice survived. Furthermore, none of the mice immunized IM or orally with 1×108 PFU of E1/E3 Ad5 survived the challenge. About 50-60% protection was seen in mice immunized with 1×108 PFU of RAdEs given orally. The level of protection was lower (30%) when mice were immunized orally with lower doses of RAdEs (3×105 PFU). The level of protection afforded by RAdEa immunization was very low; about 40% mice survived from those immunized with 7.5×105 PFU given IM and only about 20% mice survived from the group immunized with 3×106 PFU given orally. In a separate experiment, 15 mice were immunized with 1×108 PFU of RAdEs and given 2 booster doses on day 21 and 35. When challenged on day 44 post-immunization with 1000 LD50 of JEV, given intra-cerebral, 100% of the immunized mice survived.
[0080]The flavivirus E protein has been the antigen of choice for vaccine development using modern methods of vaccinology such as the DNA vaccination or the use of recombinant virus for antigen delivery (10, 12, 16, 28-31). This has been so because E protein plays an important role in a number of processes, including viral attachment, membrane fusion and entry into the host cell (26). Besides, flavivirus E protein induces virus-neutralizing antibodies and CTLs (14, 14, 15, 22, 23, 34). It has been shown that protection against JEV is mainly antibody dependent, and virus-neutralizing antibodies alone are sufficient to impart protection (19, 32). This was also implied from our previous observation that the formalin-inactivated JEV vaccine, which did not induce CTLs, provided protection to vaccinees against JEV (15). Thus, with a view to develop a recombinant virus-based JEV vaccine, we have constructed RAds synthesizing JEV E protein.
[0081]During replication of JEV, the E protein is expressed on the cell surface. Plasmid DNA vectors have been described that synthesize different forms of the E protein, such as the cytoplasmic, membrane-anchored or secretory (2, 6, 7, 15, 20). These different forms of JEV E protein were shown to induce different kind of immune responses. Similarly, recombinants of vaccinia expressing the secretory E protein of Japanese encephalitis or Dengue viruses were found to be highly immunogenic in mice (14, 27, 37). Previously, we had shown that truncated JEV E protein, where the membrane-anchor sequence had been removed by deletion of the C-terminal 102 amino acids, was actively secreted in the cell surroundings (15). We have now constructed RAds that synthesize the membrane-anchored or the secretory E protein.
[0082]Oral delivery of RAd has been shown to induce humoral and cellular immune responses to the protein encoded by the transgene, however, these responses have usually been weaker compared to those induced by the IM or intra-peritoneal delivery of RAd (21, 35, 42). In the present study too, oral immunization of mice by RAds resulted in significantly lower anti-JEV antibody titers when compared with the IM route of RAd delivery. Thus, mice immunized IM with 1×108 PFU of RAdEs gave ˜60-fold higher anti-JEV antibody response than those immunized with the same dose of the virus given orally.
[0083]Use of Sodium carbonate buffer to neutralize the pH of the stomach made no perceptible difference to antibody titers when compared with the antibody titers induced by RAdEs given orally without the bicarbonate buffer. In fact, when bicarbonate buffer was used during oral immunization, the booster doses of RAdEs failed to enhance the anti-JEV antibody titers. For RAdEa too, oral delivery resulted in weaker anti-JEV antibody responses compared to the IM delivery of the recombinant. Thus, compared to oral delivery, IM inoculation of 7.5×105 PFU of RAdEa (which was half the dose given orally) induced ˜100-fold higher anti-JEV antibody titers. The antibody titers were dose dependent. Thus higher doses of RAdEs (1×108 PFU) delivered orally induced higher anti-JEV antibody titers. These titers were ˜4-fold higher than those induced by the commercial vaccine given IM. Importantly, IM inoculation of RAdEa or RAdEs at both the doses tested (7.5×105 and 1×108 PFU) resulted in significantly higher antibody responses than those given by the vaccine; 1×108 PFU of RAdEs given IM induced ˜250-fold higher titer than the vaccine. Similar pattern was reflected in JEV neutralizing antibody titers when oral route of RAds delivery was compared with the IM route although the differences weren't so pronounced. Thus ˜20-fold higher JEV neutralizing antibody titers were induced by IM inoculation of 1×108 PFU of RAdEs compared to oral delivery of the recombinant. Only statistically insignificant differences were noted in anti-JEV antibody titers induced by 7.5×105 PFU of RAdEa and RAdEs given IM. However, there was significant difference in the JEV neutralizing antibody titers generated by the two RAds; a mean JEV neutralizing antibody titer of 10 was obtained when mice were immunized with RAdEa whereas it was 133 when mice were immunized with RAdEs. Higher JEV neutralizing antibody titers were recorded when higher doses of RAdEs were used for immunization. At both the doses tested (7.5×105 and 1×108 PFU) IM inoculation of RAdEs induced significantly higher JEV neutralizing antibody titers than the commercial vaccine. Thus a dose of 1×108 PFU of RAdEs given IM induced 8-fold higher JEV neutralization titer than the vaccine. These differences in JEV neutralizing antibody titers induced by RAdEa and RAdEs by oral and IM inoculation were reflected in the level of protection afforded by these recombinants to the immunized mice against lethal JEV challenge. Thus both doses of RAdEs inducing JEV neutralizing antibody titers higher than the vaccine gave 100% protection. Immunization with RAdEs or RAdEa given orally gave only low levels of protection. Challenge experiments indicated that mice immunized IM with the adenovirus synthesizing the membrane-anchored form of JEV E protein did not develop protective immunity whereas those immunized with recombinant synthesizing the secretory form of JEV E protein developed robust anti-JEV protective immunity resulting in 100% protection. These results show that RAd-based JEV immunizations are superior to naked DNA immunizations, which imparted only about 50-60% protection in a mouse challenge model (15). It is interesting that level of protection was similar (50-60%) when mice were immunized with plasmid DNA synthesizing Ea or Es proteins (15) whereas in the present work Es induced significantly superior protective immune response than the Ea protein. This may be related to a more efficient delivery of JEV transgene using RAd than the direct injection of naked plasmid DNA for immunization. Our finding is, however, consistent with reports from others where truncated form of JEV or Dengue E protein (leading to its secretion) was found to be more immunogenic than the membrane-anchored form of the E protein (14, 37).
[0084]Poor anti-JEV antibody induction by oral immunization with RAds was also reflected in poor cytokine secretion by splenocytes in presence of JEV. While very little IFN-γ was secreted by splenocytes from mice immunized orally with RAdEs or RAdEa, significant amounts of IFN-γ were secreted by splenocytes obtained from mice immunized IM with RAdEa or RAdEs. Splenocytes from IM immunized mice also synthesized moderate amounts of IL-5 that was not detectable in cultures of splenocytes obtained from mice immunized orally with RAds. Mice immunized IM with both RAdEa and RAdEs had significant CTL activity, which was undetectable in mice immunized orally with RAds or IM with the vaccine. Oral immunization with RAdEs at lower dose resulted in IgG1 dominated immune responses; ratio of IgG1/IgG2a end-point titers was 6.5. This is consistent with studies on oral immunization of mice with RAd synthesizing rabies glycoprotein where abundance of anti rabies IgG1 was recorded (46). The IM inoculation of RAdEa and RAdEs also resulted in preponderance of IgG1 kind of antibodies. No data could be found in literature on antibody isotypes when adenovirus recombinants are delivered IM. Our results indicating the preponderance of IgG1 type antibodies, secretion of IFN-γ and IL-5 by splenocytes and induction of CTLs suggest that IM inoculation of mice with RAds synthesizing JEV E protein activates both the humoral and the cellular arms of the immune system, and immune responses of both Th1 and Th2 type are induced.
[0085]The results presented in this invention show that RAd synthesizing the secretory form of JEV E protein imparted robust immunity in mice against lethal dose of JEV given intra-cerebral. This makes RAdEs a potential candidate vaccine against JEV. Further, safety profile of the vaccine of the instant application was studied. The vaccine is found to be safe for administration. None of the immunized mice showed any obvious complications.
REFERENCES
[0086]1. Andersen, M. M. and T. Ronne. 1991. Side-effects with Japanese encephalitis vaccine. Lancet 337:1044. [0087]2. Ashok, M. S, and P. N. Rangarajan. 2000. Immunization with plasmid DNA encoding the envelope glycoprotein of Japanese encephalitis virus confers significant protection against intracerebral viral challenge without inducing detectable antiviral antibodies. Vaccine 18:68-75. [0088]3. Both, G. W., L. J. Lockett, V. Janardhana, S. J. Edwards, A. R. Bellamy, F. L. Graham, L. Prevec, and M. E. Andrew. 1993. Protective immunity to rotavirus-induced diarrhoea is passively transferred to newborn mice from naive dams vaccinated with a single dose of a recombinant adenovirus expressing rotavirus VP7sc. Virology 193:940-950. [0089]4. Casimiro, D. R., A. Tang, L. Chen, T. M. Fu, R. K. Evans, M. E. Davies, D. C. Freed, W. Hurni, J. M. Aste-Amezaga, L. Guan, R. Long, L. Huang, V. Harris, D. K. Nawrocki, H. Mach, R. D. Troutman, L. A. Isopi, K. K. Murthy, K. Rice, K. A. Wilson, D. B. Volkin, E. A. Emini, and J. W. Shiver. 2003. Vaccine-induced immunity in baboons by using DNA and replication-incompetent adenovirus type 5 vectors expressing a human immunodeficiency virus type 1 gag gene. J Virol. 77:7663-7668. [0090]5. Chambers, T. J., C. S. Hahn, R. Galler, and C. M. Rice. 1990. Flavivirus genome organization, expression and replication. Annu. Rev. Microbiol. 44:649. [0091]6. Chang, G.-J. J., A. R. Hunt, and B. Davis. 2000. A single intramuscular injection of recombinant plasmid DNA induces protective immunity and prevents Japanese encephalitis in mice. Journal of Virology 74:4244-4252. [0092]7. Chen, H. W., C. H. Pan, M. Y. Liau, R. Jou, C. J. Tsai, H. J. Wu, Y. L. Lin, and M. H. Tao. 1999. Screening of protective antigens of Japanese encephalitis virus by DNA immunization: a comparative study with conventional viral vaccines. J. Virol. 73:10137-10145. [0093]8. Chengalvala, M. V., B. M. Bhat, R. A. Bhat, S. K. Dheer, M. D. Lubeck, R. H. Purcell, and K. K. Murthy. 1997. Replication and immunogenicity of Ad7-, Ad4-, and Ad5-hepatitis B virus surface antigen recombinants, with or without a portion of E3 region, in chimpanzees. Vaccine 15:335-339. [0094]9. Flanagan, B., C. R. Pringle, and K. N. Leppard. 1997. A recombinant human adenovirus expressing the simian immunodeficiency virus Gag antigen can induce long-lived immune responses in mice. J Gen. Virol. 78 (Pt 5):991-997. [0095]10. Fonseca, B. A., S. Pincus, R. E. Shope, E. Paoletti, and P. W. Mason. 1994. Recombinant vaccinia viruses co-expressing dengue-1 glycoproteins prM and E induce neutralizing antibodies in mice. Vaccine 12:279-285. [0096]11. Fooks, A. R., D. Jeevarajah, J. Lee, A. Warnes, S, Niewiesk, M. ter, V, J. R. Stephenson, and J. C. Clegg. 1998. Oral or parenteral administration of replication-deficient adenoviruses expressing the measles virus haemagglutinin and fusion proteins: protective immune responses in rodents. J Gen. Virol. 79 (Pt 5):1027-1031. [0097]12. Guirakhoo, F., R. Weltzin, T. J. Chambers, Z. X. Zhang, K. Soike, M. Ratterree, J. Arroyo, K. Georgakopoulos, J. Catalan, and T. P. Monath. 2000. Recombinant chimeric yellow fever-dengue type 2 virus is immunogenic and protective in nonhuman primates. J Virol. 74:5477-5485. [0098]13. Imler J. L. 1995. Adenovirus vectors as recombinant viral vaccines. Vaccine 13:1143-1151. [0099]14. Jan, L. R., C. S. Yang, L. S. Henchal, H. Sumiyoshi, P. L. Summers, D. R. Dubois, and C. J. Lai. 1993. Increased immunogenicity and protective efficacy in outbred and inbred mice by strategic carboxyl-terminal truncation of Japanese encephalitis virus envelope glycoprotein. Am. J Trop. Med. Hyg. 48:412-423. [0100]15. Kaur, R., G. Sachdeva, and S. Vrati. 2002. Plasmid DNA immunization against Japanese Encephalitis Virus: immunogenicity of membrane-anchored and secretory envelope protein. J. Infect. Dis. 185:1-12. [0101]16. Kaur, R. and S. Vrati. 2003. Development of a recombinant vaccine against Japanese encephalitis. J Neurovirol 9:421-431. [0102]17. Kimura-Kiroda, J. and K. Yasui. 1988. Protection of mice against Japanese encephalitis virus by passive administration of monoclonal antibodies. J. Immunol. 141:3606-3610. [0103]18. Konishi, E., S. Pincus, E. Paoletti, R. E. Shope, T. Burrage, and P. W. Mason. 1992. Mice immunized with a subviral particle containing the Japanese encephalitis virus prM/M and E proteins are protected from lethal JEV infection. Virology 188:714-720. [0104]19. Konishi, E., M. Yamaoka, S. W. Khin, I. Kurane, K. Takada, and P. W. Mason. 1999. The anamnestic neutralizing antibody response is critical for protection of mice from challenge following vaccination with a plasmid encoding the Japanese encephalitis virus premembrane and envelope genes. J. Virol. 73:5527-5534. [0105]20. Konishi, E., M. Yamaoka, Khin-Sane-Win, I. Kurane, and Mason P. W. 1998. Induction of protective immunity against Japanese encephalitis in mice by immunization with a plasmid encoding Japanese encephalitis virus premembrane and envelope genes. Journal of Virology 72:4925-4930. [0106]21. Lemiale, F., W. P. Kong, L. M. Akyurek, X. Ling, Y. Huang, B. K. Chakrabarti, M. Eckhaus, and G. J. Nabel. 2003. Enhanced mucosal immunoglobulin A response of intranasal adenoviral vector human immunodeficiency virus vaccine and localization in the central nervous system. J Virol. 77:10078-10087. [0107]22. Lin; B., C. R. Parrish, J. M. Murray, and P. J. Wright. 1994. Localization of a neutralizing epitope on the envelope protein of dengue virus type 2. Virology 202:885-890. [0108]23. Livingston, P. G., I. Kurane, C. J. Lai, M. Bray, and F. A. Ennis. 1994. Recognition of envelope protein by dengue virus serotype-specific human CD4+ CD8-cytotoxic T-cell clones: J Virol. 68:3283-3288. [0109]24. Lubeck, M. D., A. R. Davis, M. Chengalvala, R. J. Natuk, J. E. Morin, K. Molnar-Kimber, B. B. Mason, B. M. Bhat, S. Mizutani, P. P. Hung, and. 1989. Immunogenicity and efficacy testing in chimpanzees of an oral hepatitis B vaccine based on live recombinant adenovirus. Proc. Natl. Acad. Sci. U.S. A 86:6763-6767. [0110]25. Mason P. W., S. Pincus, M. J. Fournier, T. L. Mason, R. E. Shope, and E. Paoletti. 1991. Japanese encephalitis virus-Vaccinia recombinants produce particulate forms of the structural membrane proteins and induce high levels of protection against lethal JEV infection. Virology 180:294-305. [0111]26. McMinn, P. C. 1997. The molecular basis of virulence of the encephalitogenic flaviviruses. J Gen. Virol. 78 (Pt 11):2711-2722. [0112]27. Men, R., M. Bray, and C.-J. Lai. 1991. Carboxy-terminal truncated dengue virus envelope glycoprotein expressed on the cell surface and secreted intracellularly exhibit increased immunogenicity in mice. Journal of Virology 65:1400-1407. [0113]28. Monath, T. P. 2001. Prospects for development of a vaccine against the West Nile virus. Ann. N.Y. Acad. Sci. 951:1-12. [0114]29. Monath, T. P. 2002. Japanese encephalitis vaccines: current vaccines and future prospects. Curr. Top. Microbiol. Immunol. 267:105-138. [0115]30. Monath, T. P., K. McCarthy, P. Bedford, C. T. Johnson, R. Nichols, S. Yoksan, R. Marchesani, M. Knauber, K. H. Wells, J. Arroyo, and F. Guirakhoo. 2002. Clinical proof of principle for ChimeriVax: recombinant live, attenuated vaccines against flavivirus infections. Vaccine 20:1004-1018. [0116]31. Monath, T. P., K. Soike, I. Levenbook, Z. X. Zhang, J. Arroyo, S. Delagrave, G. Myers, A. D. Barrett, R. E. Shope, M. Ratterree, T. J. Chambers, and F. Guirakhoo. 1999. Recombinant, chimaeric live, attenuated vaccine (ChimeriVax) incorporating the envelope genes of Japanese encephalitis (SA14-14-2) virus and the capsid and nonstructural genes of yellow fever (17D) virus is safe, immunogenic and protective in non-human primates. Vaccine 17:1869-1882. [0117]32. Pan, C. H., H. W. Chen, H. W. Huang, and M. H. Tao. 2001. Protective mechanisms induced by a Japanese encephalitis virus DNA vaccine: requirement for antibody but not CD8(+) cytotoxic T-cell responses. J Virol. 75:11457-11463. [0118]33. Plesner, A. M. and T. Ronne. 1997. Allergic mucocutaneous reactions to Japanese encephalitis vaccine. Vaccine 15:1239-1243. [0119]34. Putnak, R., R. Feighny, J. Burrous, M. Cochran, C. Hackett, G. Smith, and C. Hoke. 1991. Dengue-1 virus envelope glycoprotein gene expressed in recombinant baculovirus elicits virus-neutralizing antibody in mice and protects them from virus challenge. Am. J Trop. Med. Hyg. 45:159-167. [0120]35. Raikwar, S. P., P. Malik, O, Singh, and S. Vrati. 1997. Recombinant adenovirus synthesizing cell surface-anchored beta hCG induces bioneutralizing antibodies in rats. Gene 190:197-202. [0121]36. Ramakrishna, C., A. Desai, S. K. Shankar, A. Chandramuki, and V. Ravi. 1999. Oral immunisation of mice with live Japanese encephalitis virus induces a protective immune response. Vaccine 17:3102-3108. [0122]37. Raviprakash, K., T. J. Kochel, D. Ewing, M. Simmons, I. Phillips, C. G. Hayes, and K R. Porter. 2000. Immunogenicity of dengue virus type 1 DNA vaccines expressing truncated and full length envelope protein. Vaccine 18:2426-2434. [0123]38. Ruff, T. A., D. Eisen, A. Fuller, and R. Kas. 1991. Adverse reactions to Japanese encephalitis vaccine. Lancet 338:881-882. [0124]39. Sakaguchi, M., M. Yoshida, W. Kuroda, O. Harayama, Y. Matsunaga, and S. Inouye. 2000. Systemic immediate-type reactions to gelatin included in Japanese encephalitis vaccines. Vaccine 15:121-122. [0125]40. Sharpe, S., A. Fooks, J. Lee, K. Hayes, C. Clegg, and M. Cranage. 2002. Single oral immunization with replication deficient recombinant adenovirus elicits long-lived transgene-specific cellular and humoral immune responses. Virology 293:210-216. [0126]41. Shiver, J. W., T. M. Fu, L. Chen, D. R. Casimiro, M. E. Davies, R. K. Evans, Z. Q. Zhang, A. J. Simon, W. L. Trigona, S. A. Dubey, L. Huang, V. A. Harris, R. S. Long, X. Liang, L. Handt, W. A. Schleif, L. Zhu, D. C. Freed, N. V. Persaud, L. Guan, K. S. Punt, A. Tang, M. Chen, K. A. Wilson, K. B. Collins, G. J. Heidecker, V. R. Fernandez, H. C. Perry, J. G. Joyce, K. M. Grimm, J. C. Cook, P. M. Keller, D. S. Kresock, H. Mach, R. D. Troutman, L. A. Isopi, D. M. Williams, Z. Xu, K. E. Bohannon, D. B. Volkin, D. C. Montefiori, A. Miura, G. R. Krivulka, M. A. Lifton, M. J. Kuroda, J. E. Schmitz, N. L. Letvin, M. J. Caulfield, A. J. Bett, R. Youil, D. C. Kaslow, and E. A. Emini. 2002. Replication-incompetent adenoviral vaccine vector elicits effective anti-immunodeficiency-virus immunity. Nature 415:331-335. [0127]42. Vos, A., A. Neubert, E. Pommerening, T. Muller, L. Dohner, L. Neubert, and K. Hughes. 2001. Immunogenicity of an E1-deleted recombinant human adenovirus against rabies by different routes of administration. J Gen. Virol. 82:2191-2197. [0128]43. Vrati, S., V. Agarwal, P. Malik, S. A. Wani, and M. Saini. 1999. Molecular characterization of an Indian isolate of Japanese encephalitis virus that shows an extended lag phase during growth. J. Gen. Virol. 80:1665-1671. [0129]44. Vrati, S., R. K. Giri, A. Razdan, and P. Malik.
1999. Complete nucleotide sequence of an Indian strain of Japanese encephalitis virus: sequence comparison with other strains and phylogenetic analysis. Am. J. Trop. Med. Hyg. 61:677-680. [0130]45. World Health Organization. 1998. Japanese encephalitis vaccines. Wkly Epidemiol Rec 73:334-344. [0131]46. Xiang, Z., Y. Li, G. Gao, J. M. Wilson, and H. C. Ertl. 2003. Mucosally delivered E1-deleted adenoviral vaccine carriers induce transgene product-specific antibody responses in neonatal mice. J Immunol. 171:4287-4293. [0132]47. Xiang, Z. Q., G. P. Gao, A. Reyes-Sandoval, Y. Li, J. M. Wilson, and H. C. Ertl. 2003. Oral vaccination of mice with adenoviral vectors is not impaired by preexisting immunity to the vaccine carrier. J Virol. 77:10780-10789. [0133]48. Xiang, Z. Q., Y. Yang, J. M. Wilson, and H. C. Ertl. 1996. A replication-defective human adenovirus recombinant serves as a highly efficacious vaccine carrier. Virology 219:220-227. [0134]49. Yoshida, T., K. Okuda, K. Q. Xin, K. Tadokoro, J. Fukushima, S. Toda, E. Hagiwara, K. Hamajima, T. Koshino, and T. Saito. 2001. Activation of HIV-1-specific immune responses to an HIV-1 vaccine constructed from a replication-defective adenovirus vector using various combinations of immunization protocols. Clin. Exp. Immunol. 124:445-452. [0135]50. Zhao, J., Y. Lou, J. Pinczewski, N. Malkevitch, K. Aldrich, V. S. Kalyanaraman, D. Venzon, B. Peng, L. J. Patterson, Y. Edghill-Smith, R. Woodward, G. N. Pavlakis, and M. Robert-Guroff. 2003. Boosting of SIV-specific immune responses in rhesus macaques by repeated administration of Ad5 hr-SIVenv/rev and Ad5 hr-SIVgag recombinants. Vaccine 21:4022-4035.
Sequence CWU
1
1135651DNAARTIFICIAL SEQUENCEPlasmid pAdEs 1cgtaactata acggtcctaa
ggtagcgaaa gctcagatct ggatctcccg atcccctatg 60gtcgactctc agtacaatct
gctctgatgc cgcatagtta agccagtatc tgctccctgc 120ttgtgtgttg gaggtcgctg
agtagtgcgc gagcaaaatt taagctacaa caaggcaagg 180cttgaccgac aattgcatga
agaatctgct tagggttagg cgttttgcgc tgcttcgcga 240tgtacgggcc agatatacgc
gttgacattg attattgact agttattaat agtaatcaat 300tacggggtca ttagttcata
gcccatatat ggagttccgc gttacataac ttacggtaaa 360tggcccgcct ggctgaccgc
ccaacgaccc ccgcccattg acgtcaataa tgacgtatgt 420tcccatagta acgccaatag
ggactttcca ttgacgtcaa tgggtggact atttacggta 480aactgcccac ttggcagtac
atcaagtgta tcatatgcca agtacgcccc ctattgacgt 540caatgacggt aaatggcccg
cctggcatta tgcccagtac atgaccttat gggactttcc 600tacttggcag tacatctacg
tattagtcat cgctattacc atggtgatgc ggttttggca 660gtacatcaat gggcgtggat
agcggtttga ctcacgggga tttccaagtc tccaccccat 720tgacgtcaat gggagtttgt
tttggcacca aaatcaacgg gactttccaa aatgtcgtaa 780caactccgcc ccattgacgc
aaatgggcgg taggcgtgta cggtgggagg tctatataag 840cagagctctc tggctaacta
gagaacccac tgcttactgg cttatcgaaa ttaatacgac 900tcactatagg gagacccaag
ctggctagcg tttaaacggg ccctctagac tcgagcggcc 960gccactgtgc tggatgatcc
gagctcggta ccatgtggct cgcaagcttg gcagttgtca 1020tagcttgcgc aggagccatg
aagttgtcga atttccaggg gaagcttttg atgaccatca 1080acaacacgga cattgcagac
gttatcgtga ttcccacctc aaaaggagag aacagatgct 1140gggtccgggc aatcgacgtc
ggttacatgt gtgaggacac catcacgtac gaatgtccta 1200agcttactgc gggcaatgat
ccagaggacg tggattgctg gtgtgacaac caagaagtct 1260acgtccaata tggacggtgc
acgcggacca ggcattccaa gcgaagcagg agatccgtgt 1320cggtccagac acatggggag
agttcactag tgaataaaaa agaggcttgg ctggattcaa 1380cgaaagccac acgatatctc
acgaaaactg agaactggat cataaggaat cctggctatg 1440ctttcttggc ggcggtactt
ggctggatgc ttggcagtaa caacggtcaa cgcgtggtat 1500ttaccatcct cctgctgttg
gtcgctccgg cttacagttt taattgtctg ggaatgggca 1560atcgcgactt catagaagga
gccagtggag ccacttgggt ggacttggtg ctagaaggag 1620atagctgttt gacaatcatg
gcaaacgata aaccaacatt ggatgtccgc atgattaaca 1680tcgaagctag ccaacttgct
gaggtcagaa gttattgcta tcatgcctca gtcactgaca 1740tctcgacggt ggctcggtgc
cccatgactg gagaagctca caacgagaag cgagctgata 1800gtagctatgt gtgcaaacaa
ggcttcactg atcgtgggtg gggcaacgga tgtggacttt 1860tcgggaaggg aagcattgac
acatgtgcaa aattctcctg caccagcaaa gcgattggga 1920gaacaatcca gccagaaaac
atcaaatacg aagttggcat ttttgtgcat ggaaccacca 1980cttcggaaaa ccatgggaat
tactcagcgc aagttggggc gtcccaggcg gcaaagttta 2040ccgtaacacc caatgctcct
tcgataaccc tcaaacttgg tgactacgga gaagtcacac 2100tggactgtga gccaaggagt
ggactgaaca ctgaagcgtt ttacgtcatg accgtggggt 2160caaagtcatt tctggtccat
agggaatggt ttcatgacct cgctctcccc tggacgtccc 2220cttcgagcac agcgtggaga
aacagagaac tcctcatgga atttgaagag gcgcacgcca 2280caaaacagtc cgttgttgct
cttggttcac aggaaggagg cctccatcag gcgttggcag 2340gagccatcgt ggtggagtac
tcaagctcag tgaagttaac atcaggccac ctgaaatgta 2400ggctgaaaat ggacaaacta
gctctgaaag gcacaaccta tggcatgtgt acagaaaaat 2460tctcgttcgc gaaaaatccg
gcggacactg gtcacggaac agttgtcatt gaactctcct 2520actctgggag tgatggcccc
tgcaaaattc cgattgtctc cgtcgcgagc ctcaatgaca 2580tgactcctgt tgggcggctg
gtgacagtga acccctttgt cgcggcttcc agtgccaact 2640caaaggtgct ggtcgagatg
gaacccccct tcggagactc ctatatcgtg gttggaaggg 2700gagacaagca gatcaaccac
cattggcaca aataataaag gatctgttgt ttgcccctcc 2760cccgtgcctt ccttgaccct
ggaaggtgcc actcccactg tcctttccta ataaaatgag 2820gaaattgcat cgcattgtct
gagtaggtgt cattctattc tggggggtgg ggtggggcag 2880gacagcaagg gggaggattg
ggaagacaat agcaggcatg ctggggatgc ggtgggctct 2940atggcttctg aggcggaaag
aaccagcaga tctgcagatc tgaattcatc tatgtcgggt 3000gcggagaaag aggtaatgaa
atggcatcga ctcgaagatc tgggcgtggt taagggtggg 3060aaagaatata taaggtgggg
gtcttatgta gttttgtatc tgttttgcag cagccgccgc 3120cgccatgagc accaactcgt
ttgatggaag cattgtgagc tcatatttga caacgcgcat 3180gcccccatgg gccggggtgc
gtcagaatgt gatgggctcc agcattgatg gtcgccccgt 3240cctgcccgca aactctacta
ccttgaccta cgagaccgtg tctggaacgc cgttggagac 3300tgcagcctcc gccgccgctt
cagccgctgc agccaccgcc cgcgggattg tgactgactt 3360tgctttcctg agcccgcttg
caagcagtgc agcttcccgt tcatccgccc gcgatgacaa 3420gttgacggct cttttggcac
aattggattc tttgacccgg gaacttaatg tcgtttctca 3480gcagctgttg gatctgcgcc
agcaggtttc tgccctgaag gcttcctccc ctcccaatgc 3540ggtttaaaac ataaataaaa
aaccagactc tgtttggatt tggatcaagc aagtgtcttg 3600ctgtctttat ttaggggttt
tgcgcgcgcg gtaggcccgg gaccagcggt ctcggtcgtt 3660gagggtcctg tgtatttttt
ccaggacgtg gtaaaggtga ctctggatgt tcagatacat 3720gggcataagc ccgtctctgg
ggtggaggta gcaccactgc agagcttcat gctgcggggt 3780ggtgttgtag atgatccagt
cgtagcagga gcgctgggcg tggtgcctaa aaatgtcttt 3840cagtagcaag ctgattgcca
ggggcaggcc cttggtgtaa gtgtttacaa agcggttaag 3900ctgggatggg tgcatacgtg
gggatatgag atgcatcttg gactgtattt ttaggttggc 3960tatgttccca gccatatccc
tccggggatt catgttgtgc agaaccacca gcacagtgta 4020tccggtgcac ttgggaaatt
tgtcatgtag cttagaagga aatgcgtgga agaacttgga 4080gacgcccttg tgacctccaa
gattttccat gcattcgtcc ataatgatgg caatgggccc 4140acgggcggcg gcctgggcga
agatatttct gggatcacta acgtcatagt tgtgttccag 4200gatgagatcg tcataggcca
tttttacaaa gcgcgggcgg agggtgccag actgcggtat 4260aatggttcca tccggcccag
gggcgtagtt accctcacag atttgcattt cccacgcttt 4320gagttcagat ggggggatca
tgtctacctg cggggcgatg aagaaaacgg tttccggggt 4380aggggagatc agctgggaag
aaagcaggtt cctgagcagc tgcgacttac cgcagccggt 4440gggcccgtaa atcacaccta
ttaccggctg caactggtag ttaagagagc tgcagctgcc 4500gtcatccctg agcagggggg
ccacttcgtt aagcatgtcc ctgactcgca tgttttccct 4560gaccaaatcc gccagaaggc
gctcgccgcc cagcgatagc agttcttgca aggaagcaaa 4620gtttttcaac ggtttgagac
cgtccgccgt aggcatgctt ttgagcgttt gaccaagcag 4680ttccaggcgg tcccacagct
cggtcacctg ctctacggca tctcgatcca gcatatctcc 4740tcgtttcgcg ggttggggcg
gctttcgctg tacggcagta gtcggtgctc gtccagacgg 4800gccagggtca tgtctttcca
cgggcgcagg gtcctcgtca gcgtagtctg ggtcacggtg 4860aaggggtgcg ctccgggctg
cgcgctggcc agggtgcgct tgaggctggt cctgctggtg 4920ctgaagcgct gccggtcttc
gccctgcgcg tcggccaggt agcatttgac catggtgtca 4980tagtccagcc cctccgcggc
gtggcccttg gcgcgcagct tgcccttgga ggaggcgccg 5040cacgaggggc agtgcagact
tttgagggcg tagagcttgg gcgcgagaaa taccgattcc 5100ggggagtagg catccgcgcc
gcaggccccg cagacggtct cgcattccac gagccaggtg 5160agctctggcc gttcggggtc
aaaaaccagg tttcccccat gctttttgat gcgtttctta 5220cctctggttt ccatgagccg
gtgtccacgc tcggtgacga aaaggctgtc cgtgtccccg 5280tatacagact tgagaggcct
gtcctcgagc ggtgttccgc ggtcctcctc gtatagaaac 5340tcggaccact ctgagacaaa
ggctcgcgtc caggccagca cgaaggaggc taagtgggag 5400gggtagcggt cgttgtccac
tagggggtcc actcgctcca gggtgtgaag acacatgtcg 5460ccctcttcgg catcaaggaa
ggtgattggt ttgtaggtgt aggccacgtg accgggtgtt 5520cctgaagggg ggctataaaa
gggggtgggg gcgcgttcgt cctcactctc ttccgcatcg 5580ctgtctgcga gggccagctg
ttggggtgag tactccctct gaaaagcggg catgacttct 5640gcgctaagat tgtcagtttc
caaaaacgag gaggatttga tattcacctg gcccgcggtg 5700atgcctttga gggtggccgc
atccatctgg tcagaaaaga caatcttttt gttgtcaagc 5760ttggtggcaa acgacccgta
gagggcgttg gacagcaact tggcgatgga gcgcagggtt 5820tggtttttgt cgcgatcggc
gcgctccttg gccgcgatgt ttagctgcac gtattcgcgc 5880gcaacgcacc gccattcggg
aaagacggtg gtgcgctcgt cgggcaccag gtgcacgcgc 5940caaccgcggt tgtgcagggt
gacaaggtca acgctggtgg ctacctctcc gcgtaggcgc 6000tcgttggtcc agcagaggcg
gccgcccttg cgcgagcaga atggcggtag ggggtctagc 6060tgcgtctcgt ccggggggtc
tgcgtccacg gtaaagaccc cgggcagcag gcgcgcgtcg 6120aagtagtcta tcttgcatcc
ttgcaagtct agcgcctgct gccatgcgcg ggcggcaagc 6180gcgcgctcgt atgggttgag
tgggggaccc catggcatgg ggtgggtgag cgcggaggcg 6240tacatgccgc aaatgtcgta
aacgtagagg ggctctctga gtattccaag atatgtaggg 6300tagcatcttc caccgcggat
gctggcgcgc acgtaatcgt atagttcgtg cgagggagcg 6360aggaggtcgg gaccgaggtt
gctacgggcg ggctgctctg ctcggaagac tatctgcctg 6420aagatggcat gtgagttgga
tgatatggtt ggacgctgga agacgttgaa gctggcgtct 6480gtgagaccta ccgcgtcacg
cacgaaggag gcgtaggagt cgcgcagctt gttgaccagc 6540tcggcggtga cctgcacgtc
tagggcgcag tagtccaggg tttccttgat gatgtcatac 6600ttatcctgtc cctttttttt
ccacagctcg cggttgagga caaactcttc gcggtctttc 6660cagtactctt ggatcggaaa
cccgtcggcc tccgaacggt aagagcctag catgtagaac 6720tggttgacgg cctggtaggc
gcagcatccc ttttctacgg gtagcgcgta tgcctgcgcg 6780gccttccgga gcgaggtgtg
ggtgagcgca aaggtgtccc tgaccatgac tttgaggtac 6840tggtatttga agtcagtgtc
gtcgcatccg ccctgctccc agagcaaaaa gtccgtgcgc 6900tttttggaac gcggatttgg
cagggcgaag gtgacatcgt tgaagagtat ctttcccgcg 6960cgaggcataa agttgcgtgt
gatgcggaag ggtcccggca cctcggaacg gttgttaatt 7020acctgggcgg cgagcacgat
ctcgtcaaag ccgttgatgt tgtggcccac aatgtaaagt 7080tccaagaagc gcgggatgcc
cttgatggaa ggcaattttt taagttcctc gtaggtgagc 7140tcttcagggg agctgagccc
gtgctctgaa agggcccagt ctgcaagatg agggttggaa 7200gcgacgaatg agctccacag
gtcacgggcc attagcattt gcaggtggtc gcgaaaggtc 7260ctaaactggc gacctatggc
cattttttct ggggtgatgc agtagaaggt aagcgggtct 7320tgttcccagc ggtcccatcc
aaggttcgcg gctaggtctc gcgcggcagt cactagaggc 7380tcatctccgc cgaacttcat
gaccagcatg aagggcacga gctgcttccc aaaggccccc 7440atccaagtat aggtctctac
atcgtaggtg acaaagagac gctcggtgcg aggatgcgag 7500ccgatcggga agaactggat
ctcccgccac caattggagg agtggctatt gatgtggtga 7560aagtagaagt ccctgcgacg
ggccgaacac tcgtgctggc ttttgtaaaa acgtgcgcag 7620tactggcagc ggtgcacggg
ctgtacatcc tgcacgaggt tgacctgacg accgcgcaca 7680aggaagcaga gtgggaattt
gagcccctcg cctggcgggt ttggctggtg gtcttctact 7740tcggctgctt gtccttgacc
gtctggctgc tcgaggggag ttacggtgga tcggaccacc 7800acgccgcgcg agcccaaagt
ccagatgtcc gcgcgcggcg gtcggagctt gatgacaaca 7860tcgcgcagat gggagctgtc
catggtctgg agctcccgcg gcgtcaggtc aggcgggagc 7920tcctgcaggt ttacctcgca
tagacgggtc agggcgcggg ctagatccag gtgataccta 7980atttccaggg gctggttggt
ggcggcgtcg atggcttgca agaggccgca tccccgcggc 8040gcgactacgg taccgcgcgg
cgggcggtgg gccgcggggg tgtccttgga tgatgcatct 8100aaaagcggtg acgcgggcga
gcccccggag gtaggggggg ctccggaccc gccgggagag 8160ggggcagggg cacgtcggcg
ccgcgcgcgg gcaggagctg gtgctgcgcg cgtaggttgc 8220tggcgaacgc gacgacgcgg
cggttgatct cctgaatctg gcgcctctgc gtgaagacga 8280cgggcccggt gagcttgaac
ctgaaagaga gttcgacaga atcaatttcg gtgtcgttga 8340cggcggcctg gcgcaaaatc
tcctgcacgt ctcctgagtt gtcttgatag gcgatctcgg 8400ccatgaactg ctcgatctct
tcctcctgga gatctccgcg tccggctcgc tccacggtgg 8460cggcgaggtc gttggaaatg
cgggccatga gctgcgagaa ggcgttgagg cctccctcgt 8520tccagacgcg gctgtagacc
acgccccctt cggcatcgcg ggcgcgcatg accacctgcg 8580cgagattgag ctccacgtgc
cgggcgaaga cggcgtagtt tcgcaggcgc tgaaagaggt 8640agttgagggt ggtggcggtg
tgttctgcca cgaagaagta cataacccag cgtcgcaacg 8700tggattcgtt gatatccccc
aaggcctcaa ggcgctccat ggcctcgtag aagtccacgg 8760cgaagttgaa aaactgggag
ttgcgcgccg acacggttaa ctcctcctcc agaagacgga 8820tgagctcggc gacagtgtcg
cgcacctcgc gctcaaaggc tacaggggcc tcttcttctt 8880cttcaatctc ctcttccata
agggcctccc cttcttcttc ttctggcggc ggtgggggag 8940gggggacacg gcggcgacga
cggcgcaccg ggaggcggtc gacaaagcgc tcgatcatct 9000ccccgcggcg acggcgcatg
gtctcggtga cggcgcggcc gttctcgcgg gggcgcagtt 9060ggaagacgcc gcccgtcatg
tcccggttat gggttggcgg ggggctgcca tgcggcaggg 9120atacggcgct aacgatgcat
ctcaacaatt gttgtgtagg tactccgccg ccgagggacc 9180tgagcgagtc cgcatcgacc
ggatcggaaa acctctcgag aaaggcgtct aaccagtcac 9240agtcgcaagg taggctgagc
accgtggcgg gcggcagcgg gcggcggtcg gggttgtttc 9300tggcggaggt gctgctgatg
atgtaattaa agtaggcggt cttgagacgg cggatggtcg 9360acagaagcac catgtccttg
ggtccggcct gctgaatgcg caggcggtcg gccatgcccc 9420aggcttcgtt ttgacatcgg
cgcaggtctt tgtagtagtc ttgcatgagc ctttctaccg 9480gcacttcttc ttctccttcc
tcttgtcctg catctcttgc atctatcgct gcggcggcgg 9540cggagtttgg ccgtaggtgg
cgccctcttc ctcccatgcg tgtgaccccg aagcccctca 9600tcggctgaag cagggctagg
tcggcgacaa cgcgctcggc taatatggcc tgctgcacct 9660gcgtgagggt agactggaag
tcatccatgt ccacaaagcg gtggtatgcg cccgtgttga 9720tggtgtaagt gcagttggcc
ataacggacc agttaacggt ctggtgaccc ggctgcgaga 9780gctcggtgta cctgagacgc
gagtaagccc tcgagtcaaa tacgtagtcg ttgcaagtcc 9840gcaccaggta ctggtatccc
accaaaaagt gcggcggcgg ctggcggtag aggggccagc 9900gtagggtggc cggggctccg
ggggcgagat cttccaacat aaggcgatga tatccgtaga 9960tgtacctgga catccaggtg
atgccggcgg cggtggtgga ggcgcgcgga aagtcgcgga 10020cgcggttcca gatgttgcgc
agcggcaaaa agtgctccat ggtcgggacg ctctggccgg 10080tcaggcgcgc gcaatcgttg
acgctctagc gtgcaaaagg agagcctgta agcgggcact 10140cttccgtggt ctggtggata
aattcgcaag ggtatcatgg cggacgaccg gggttcgagc 10200cccgtatccg gccgtccgcc
gtgatccatg cggttaccgc ccgcgtgtcg aacccaggtg 10260tgcgacgtca gacaacgggg
gagtgctcct tttggcttcc ttccaggcgc ggcggctgct 10320gcgctagctt ttttggccac
tggccgcgcg cagcgtaagc ggttaggctg gaaagcgaaa 10380gcattaagtg gctcgctccc
tgtagccgga gggttatttt ccaagggttg agtcgcggga 10440cccccggttc gagtctcgga
ccggccggac tgcggcgaac gggggtttgc ctccccgtca 10500tgcaagaccc cgcttgcaaa
ttcctccgga aacagggacg agcccctttt ttgcttttcc 10560cagatgcatc cggtgctgcg
gcagatgcgc ccccctcctc agcagcggca agagcaagag 10620cagcggcaga catgcagggc
accctcccct cctcctaccg cgtcaggagg ggcgacatcc 10680gcggttgacg cggcagcaga
tggtgattac gaacccccgc ggcgccgggc ccggcactac 10740ctggacttgg aggagggcga
gggcctggcg cggctaggag cgccctctcc tgagcggcac 10800ccaagggtgc agctgaagcg
tgatacgcgt gaggcgtacg tgccgcggca gaacctgttt 10860cgcgaccgcg agggagagga
gcccgaggag atgcgggatc gaaagttcca cgcagggcgc 10920gagctgcggc atggcctgaa
tcgcgagcgg ttgctgcgcg aggaggactt tgagcccgac 10980gcgcgaaccg ggattagtcc
cgcgcgcgca cacgtggcgg ccgccgacct ggtaaccgca 11040tacgagcaga cggtgaacca
ggagattaac tttcaaaaaa gctttaacaa ccacgtgcgt 11100acgcttgtgg cgcgcgagga
ggtggctata ggactgatgc atctgtggga ctttgtaagc 11160gcgctggagc aaaacccaaa
tagcaagccg ctcatggcgc agctgttcct tatagtgcag 11220cacagcaggg acaacgaggc
attcagggat gcgctgctaa acatagtaga gcccgagggc 11280cgctggctgc tcgatttgat
aaacatcctg cagagcatag tggtgcagga gcgcagcttg 11340agcctggctg acaaggtggc
cgccatcaac tattccatgc ttagcctggg caagttttac 11400gcccgcaaga tataccatac
cccttacgtt cccatagaca aggaggtaaa gatcgagggg 11460ttctacatgc gcatggcgct
gaaggtgctt accttgagcg acgacctggg cgtttatcgc 11520aacgagcgca tccacaaggc
cgtgagcgtg agccggcggc gcgagctcag cgaccgcgag 11580ctgatgcaca gcctgcaaag
ggccctggct ggcacgggca gcggcgatag agaggccgag 11640tcctactttg acgcgggcgc
tgacctgcgc tgggccccaa gccgacgcgc cctggaggca 11700gctggggccg gacctgggct
ggcggtggca cccgcgcgcg ctggcaacgt cggcggcgtg 11760gaggaatatg acgaggacga
tgagtacgag ccagaggacg gcgagtacta agcggtgatg 11820tttctgatca gatgatgcaa
gacgcaacgg acccggcggt gcgggcggcg ctgcagagcc 11880agccgtccgg ccttaactcc
acggacgact ggcgccaggt catggaccgc atcatgtcgc 11940tgactgcgcg caatcctgac
gcgttccggc agcagccgca ggccaaccgg ctctccgcaa 12000ttctggaagc ggtggtcccg
gcgcgcgcaa accccacgca cgagaaggtg ctggcgatcg 12060taaacgcgct ggccgaaaac
agggccatcc ggcccgacga ggccggcctg gtctacgacg 12120cgctgcttca gcgcgtggct
cgttacaaca gcggcaacgt gcagaccaac ctggaccggc 12180tggtggggga tgtgcgcgag
gccgtggcgc agcgtgagcg cgcgcagcag cagggcaacc 12240tgggctccat ggttgcacta
aacgccttcc tgagtacaca gcccgccaac gtgccgcggg 12300gacaggagga ctacaccaac
tttgtgagcg cactgcggct aatggtgact gagacaccgc 12360aaagtgaggt gtaccagtct
gggccagact attttttcca gaccagtaga caaggcctgc 12420agaccgtaaa cctgagccag
gctttcaaaa acttgcaggg gctgtggggg gtgcgggctc 12480ccacaggcga ccgcgcgacc
gtgtctagct tgctgacgcc caactcgcgc ctgttgctgc 12540tgctaatagc gcccttcacg
gacagtggca gcgtgtcccg ggacacatac ctaggtcact 12600tgctgacact gtaccgcgag
gccataggtc aggcgcatgt ggacgagcat actttccagg 12660agattacaag tgtcagccgc
gcgctggggc aggaggacac gggcagcctg gaggcaaccc 12720taaactacct gctgaccaac
cggcggcaga agatcccctc gttgcacagt ttaaacagcg 12780aggaggagcg cattttgcgc
tacgtgcagc agagcgtgag ccttaacctg atgcgcgacg 12840gggtaacgcc cagcgtggcg
ctggacatga ccgcgcgcaa catggaaccg ggcatgtatg 12900cctcaaaccg gccgtttatc
aaccgcctaa tggactactt gcatcgcgcg gccgccgtga 12960accccgagta tttcaccaat
gccatcttga acccgcactg gctaccgccc cctggtttct 13020acaccggggg attcgaggtg
cccgagggta acgatggatt cctctgggac gacatagacg 13080acagcgtgtt ttccccgcaa
ccgcagaccc tgctagagtt gcaacagcgc gagcaggcag 13140aggcggcgct gcgaaaggaa
agcttccgca ggccaagcag cttgtccgat ctaggcgctg 13200cggccccgcg gtcagatgct
agtagcccat ttccaagctt gatagggtct cttaccagca 13260ctcgcaccac ccgcccgcgc
ctgctgggcg aggaggagta cctaaacaac tcgctgctgc 13320agccgcagcg cgaaaaaaac
ctgcctccgg catttcccaa caacgggata gagagcctag 13380tggacaagat gagtagatgg
aagacgtacg cgcaggagca cagggacgtg ccaggcccgc 13440gcccgcccac ccgtcgtcaa
aggcacgacc gtcagcgggg tctggtgtgg gaggacgatg 13500actcggcaga cgacagcagc
gtcctggatt tgggagggag tggcaacccg tttgcgcacc 13560ttcgccccag gctggggaga
atgttttaaa aaaaaaaaaa gcatgatgca aaataaaaaa 13620ctcaccaagg ccatggcacc
gagcgttggt tttcttgtat tccccttagt atgcggcgcg 13680cggcgatgta tgaggaaggt
cctcctccct cctacgagag tgtggtgagc gcggcgccag 13740tggcggcggc gctgggttct
cccttcgatg ctcccctgga cccgccgttt gtgcctccgc 13800ggtacctgcg gcctaccggg
gggagaaaca gcatccgtta ctctgagttg gcacccctat 13860tcgacaccac ccgtgtgtac
ctggtggaca acaagtcaac ggatgtggca tccctgaact 13920accagaacga ccacagcaac
tttctgacca cggtcattca aaacaatgac tacagcccgg 13980gggaggcaag cacacagacc
atcaatcttg acgaccggtc gcactggggc ggcgacctga 14040aaaccatcct gcataccaac
atgccaaatg tgaacgagtt catgtttacc aataagttta 14100aggcgcgggt gatggtgtcg
cgcttgccta ctaaggacaa tcaggtggag ctgaaatacg 14160agtgggtgga gttcacgctg
cccgagggca actactccga gaccatgacc atagacctta 14220tgaacaacgc gatcgtggag
cactacttga aagtgggcag acagaacggg gttctggaaa 14280gcgacatcgg ggtaaagttt
gacacccgca acttcagact ggggtttgac cccgtcactg 14340gtcttgtcat gcctggggta
tatacaaacg aagccttcca tccagacatc attttgctgc 14400caggatgcgg ggtggacttc
acccacagcc gcctgagcaa cttgttgggc atccgcaagc 14460ggcaaccctt ccaggagggc
tttaggatca cctacgatga tctggagggt ggtaacattc 14520ccgcactgtt ggatgtggac
gcctaccagg cgagcttgaa agatgacacc gaacagggcg 14580ggggtggcgc aggcggcagc
aacagcagtg gcagcggcgc ggaagagaac tccaacgcgg 14640cagccgcggc aatgcagccg
gtggaggaca tgaacgatca tgccattcgc ggcgacacct 14700ttgccacacg ggctgaggag
aagcgcgctg aggccgaagc agcggccgaa gctgccgccc 14760ccgctgcgca acccgaggtc
gagaagcctc agaagaaacc ggtgatcaaa cccctgacag 14820aggacagcaa gaaacgcagt
tacaacctaa taagcaatga cagcaccttc acccagtacc 14880gcagctggta ccttgcatac
aactacggcg accctcagac cggaatccgc tcatggaccc 14940tgctttgcac tcctgacgta
acctgcggct cggagcaggt ctactggtcg ttgccagaca 15000tgatgcaaga ccccgtgacc
ttccgctcca cgcgccagat cagcaacttt ccggtggtgg 15060gcgccgagct gttgcccgtg
cactccaaga gcttctacaa cgaccaggcc gtctactccc 15120aactcatccg ccagtttacc
tctctgaccc acgtgttcaa tcgctttccc gagaaccaga 15180ttttggcgcg cccgccagcc
cccaccatca ccaccgtcag tgaaaacgtt cctgctctca 15240cagatcacgg gacgctaccg
ctgcgcaaca gcatcggagg agtccagcga gtgaccatta 15300ctgacgccag acgccgcacc
tgcccctacg tttacaaggc cctgggcata gtctcgccgc 15360gcgtcctatc gagccgcact
ttttgagcaa gcatgtccat ccttatatcg cccagcaata 15420acacaggctg gggcctgcgc
ttcccaagca agatgtttgg cggggccaag aagcgctccg 15480accaacaccc agtgcgcgtg
cgcgggcact accgcgcgcc ctggggcgcg cacaaacgcg 15540gccgcactgg gcgcaccacc
gtcgatgacg ccatcgacgc ggtggtggag gaggcgcgca 15600actacacgcc cacgccgcca
ccagtgtcca cagtggacgc ggccattcag accgtggtgc 15660gcggagcccg gcgctatgct
aaaatgaaga gacggcggag gcgcgtagca cgtcgccacc 15720gccgccgacc cggcactgcc
gcccaacgcg cggcggcggc cctgcttaac cgcgcacgtc 15780gcaccggccg acgggcggcc
atgcgggccg ctcgaaggct ggccgcgggt attgtcactg 15840tgccccccag gtccaggcga
cgagcggccg ccgcagcagc cgcggccatt agtgctatga 15900ctcagggtcg caggggcaac
gtgtattggg tgcgcgactc ggttagcggc ctgcgcgtgc 15960ccgtgcgcac ccgccccccg
cgcaactaga ttgcaagaaa aaactactta gactcgtact 16020gttgtatgta tccagcggcg
gcggcgcgca acgaagctat gtccaagcgc aaaatcaaag 16080aagagatgct ccaggtcatc
gcgccggaga tctatggccc cccgaagaag gaagagcagg 16140attacaagcc ccgaaagcta
aagcgggtca aaaagaaaaa gaaagatgat gatgatgaac 16200ttgacgacga ggtggaactg
ctgcacgcta ccgcgcccag gcgacgggta cagtggaaag 16260gtcgacgcgt aaaacgtgtt
ttgcgacccg gcaccaccgt agtctttacg cccggtgagc 16320gctccacccg cacctacaag
cgcgtgtatg atgaggtgta cggcgacgag gacctgcttg 16380agcaggccaa cgagcgcctc
ggggagtttg cctacggaaa gcggcataag gacatgctgg 16440cgttgccgct ggacgagggc
aacccaacac ctagcctaaa gcccgtaaca ctgcagcagg 16500tgctgcccgc gcttgcaccg
tccgaagaaa agcgcggcct aaagcgcgag tctggtgact 16560tggcacccac cgtgcagctg
atggtaccca agcgccagcg actggaagat gtcttggaaa 16620aaatgaccgt ggaacctggg
ctggagcccg aggtccgcgt gcggccaatc aagcaggtgg 16680cgccgggact gggcgtgcag
accgtggacg ttcagatacc cactaccagt agcaccagta 16740ttgccaccgc cacagagggc
atggagacac aaacgtcccc ggttgcctca gcggtggcgg 16800atgccgcggt gcaggcggtc
gctgcggccg cgtccaagac ctctacggag gtgcaaacgg 16860acccgtggat gtttcgcgtt
tcagcccccc ggcgcccgcg ccgttcgagg aagtacggcg 16920ccgccagcgc gctactgccc
gaatatgccc tacatccttc cattgcgcct acccccggct 16980atcgtggcta cacctaccgc
cccagaagac gagcaactac ccgacgccga accaccactg 17040gaacccgccg ccgccgtcgc
cgtcgccagc ccgtgctggc cccgatttcc gtgcgcaggg 17100tggctcgcga aggaggcagg
accctggtgc tgccaacagc gcgctaccac cccagcatcg 17160tttaaaagcc ggtctttgtg
gttcttgcag atatggccct cacctgccgc ctccgtttcc 17220cggtgccggg attccgagga
agaatgcacc gtaggagggg catggccggc cacggcctga 17280cgggcggcat gcgtcgtgcg
caccaccggc ggcggcgcgc gtcgcaccgt cgcatgcgcg 17340gcggtatcct gcccctcctt
attccactga tcgccgcggc gattggcgcc gtgcccggaa 17400ttgcatccgt ggccttgcag
gcgcagagac actgattaaa aacaagttgc atgtggaaaa 17460atcaaaataa aaagtctgga
ctctcacgct cgcttggtcc tgtaactatt ttgtagaatg 17520gaagacatca actttgcgtc
tctggccccg cgacacggct cgcgcccgtt catgggaaac 17580tggcaagata tcggcaccag
caatatgagc ggtggcgcct tcagctgggg ctcgctgtgg 17640agcggcatta aaaatttcgg
ttccaccgtt aagaactatg gcagcaaggc ctggaacagc 17700agcacaggcc agatgctgag
ggataagttg aaagagcaaa atttccaaca aaaggtggta 17760gatggcctgg cctctggcat
tagcggggtg gtggacctgg ccaaccaggc agtgcaaaat 17820aagattaaca gtaagcttga
tccccgccct cccgtagagg agcctccacc ggccgtggag 17880acagtgtctc cagaggggcg
tggcgaaaag cgtccgcgcc ccgacaggga agaaactctg 17940gtgacgcaaa tagacgagcc
tccctcgtac gaggaggcac taaagcaagg cctgcccacc 18000acccgtccca tcgcgcccat
ggctaccgga gtgctgggcc agcacacacc cgtaacgctg 18060gacctgcctc cccccgccga
cacccagcag aaacctgtgc tgccaggccc gaccgccgtt 18120gttgtaaccc gtcctagccg
cgcgtccctg cgccgcgccg ccagcggtcc gcgatcgttg 18180cggcccgtag ccagtggcaa
ctggcaaagc acactgaaca gcatcgtggg tctgggggtg 18240caatccctga agcgccgacg
atgcttctga tagctaacgt gtcgtatgtg tgtcatgtat 18300gcgtccatgt cgccgccaga
ggagctgctg agccgccgcg cgcccgcttt ccaagatggc 18360taccccttcg atgatgccgc
agtggtctta catgcacatc tcgggccagg acgcctcgga 18420gtacctgagc cccgggctgg
tgcagtttgc ccgcgccacc gagacgtact tcagcctgaa 18480taacaagttt agaaacccca
cggtggcgcc tacgcacgac gtgaccacag accggtccca 18540gcgtttgacg ctgcggttca
tccctgtgga ccgtgaggat actgcgtact cgtacaaggc 18600gcggttcacc ctagctgtgg
gtgataaccg tgtgctggac atggcttcca cgtactttga 18660catccgcggc gtgctggaca
ggggccctac ttttaagccc tactctggca ctgcctacaa 18720cgccctggct cccaagggtg
ccccaaatcc ttgcgaatgg gatgaagctg ctactgctct 18780tgaaataaac ctagaagaag
aggacgatga caacgaagac gaagtagacg agcaagctga 18840gcagcaaaaa actcacgtat
ttgggcaggc gccttattct ggtataaata ttacaaagga 18900gggtattcaa ataggtgtcg
aaggtcaaac acctaaatat gccgataaaa catttcaacc 18960tgaacctcaa ataggagaat
ctcagtggta cgaaacagaa attaatcatg cagctgggag 19020agtcctaaaa aagactaccc
caatgaaacc atgttacggt tcatatgcaa aacccacaaa 19080tgaaaatgga gggcaaggca
ttcttgtaaa gcaacaaaat ggaaagctag aaagtcaagt 19140ggaaatgcaa tttttctcaa
ctactgaggc agccgcaggc aatggtgata acttgactcc 19200taaagtggta ttgtacagtg
aagatgtaga tatagaaacc ccagacactc atatttctta 19260catgcccact attaaggaag
gtaactcacg agaactaatg ggccaacaat ctatgcccaa 19320caggcctaat tacattgctt
ttagggacaa ttttattggt ctaatgtatt acaacagcac 19380gggtaatatg ggtgttctgg
cgggccaagc atcgcagttg aatgctgttg tagatttgca 19440agacagaaac acagagcttt
cataccagct tttgcttgat tccattggtg atagaaccag 19500gtacttttct atgtggaatc
aggctgttga cagctatgat ccagatgtta gaattattga 19560aaatcatgga actgaagatg
aacttccaaa ttactgcttt ccactgggag gtgtgattaa 19620tacagagact cttaccaagg
taaaacctaa aacaggtcag gaaaatggat gggaaaaaga 19680tgctacagaa ttttcagata
aaaatgaaat aagagttgga aataattttg ccatggaaat 19740caatctaaat gccaacctgt
ggagaaattt cctgtactcc aacatagcgc tgtatttgcc 19800cgacaagcta aagtacagtc
cttccaacgt aaaaatttct gataacccaa acacctacga 19860ctacatgaac aagcgagtgg
tggctcccgg gctagtggac tgctacatta accttggagc 19920acgctggtcc cttgactata
tggacaacgt caacccattt aaccaccacc gcaatgctgg 19980cctgcgctac cgctcaatgt
tgctgggcaa tggtcgctat gtgcccttcc acatccaggt 20040gcctcagaag ttctttgcca
ttaaaaacct ccttctcctg ccgggctcat acacctacga 20100gtggaacttc aggaaggatg
ttaacatggt tctgcagagc tccctaggaa atgacctaag 20160ggttgacgga gccagcatta
agtttgatag catttgcctt tacgccacct tcttccccat 20220ggcccacaac accgcctcca
cgcttgaggc catgcttaga aacgacacca acgaccagtc 20280ctttaacgac tatctctccg
ccgccaacat gctctaccct atacccgcca acgctaccaa 20340cgtgcccata tccatcccct
cccgcaactg ggcggctttc cgcggctggg ccttcacgcg 20400ccttaagact aaggaaaccc
catcactggg ctcgggctac gacccttatt acacctactc 20460tggctctata ccctacctag
atggaacctt ttacctcaac cacaccttta agaaggtggc 20520cattaccttt gactcttctg
tcagctggcc tggcaatgac cgcctgctta cccccaacga 20580gtttgaaatt aagcgctcag
ttgacgggga gggttacaac gttgcccagt gtaacatgac 20640caaagactgg ttcctggtac
aaatgctagc taactataac attggctacc agggcttcta 20700tatcccagag agctacaagg
accgcatgta ctccttcttt agaaacttcc agcccatgag 20760ccgtcaggtg gtggatgata
ctaaatacaa ggactaccaa caggtgggca tcctacacca 20820acacaacaac tctggatttg
ttggctacct tgcccccacc atgcgcgaag gacaggccta 20880ccctgctaac ttcccctatc
cgcttatagg caagaccgca gttgacagca ttacccagaa 20940aaagtttctt tgcgatcgca
ccctttggcg catcccattc tccagtaact ttatgtccat 21000gggcgcactc acagacctgg
gccaaaacct tctctacgcc aactccgccc acgcgctaga 21060catgactttt gaggtggatc
ccatggacga gcccaccctt ctttatgttt tgtttgaagt 21120ctttgacgtg gtccgtgtgc
accagccgca ccgcggcgtc atcgaaaccg tgtacctgcg 21180cacgcccttc tcggccggca
acgccacaac ataaagaagc aagcaacatc aacaacagct 21240gccgccatgg gctccagtga
gcaggaactg aaagccattg tcaaagatct tggttgtggg 21300ccatattttt tgggcaccta
tgacaagcgc tttccaggct ttgtttctcc acacaagctc 21360gcctgcgcca tagtcaatac
ggccggtcgc gagactgggg gcgtacactg gatggccttt 21420gcctggaacc cgcactcaaa
aacatgctac ctctttgagc cctttggctt ttctgaccag 21480cgactcaagc aggtttacca
gtttgagtac gagtcactcc tgcgccgtag cgccattgct 21540tcttcccccg accgctgtat
aacgctggaa aagtccaccc aaagcgtaca ggggcccaac 21600tcggccgcct gtggactatt
ctgctgcatg tttctccacg cctttgccaa ctggccccaa 21660actcccatgg atcacaaccc
caccatgaac cttattaccg gggtacccaa ctccatgctc 21720aacagtcccc aggtacagcc
caccctgcgt cgcaaccagg aacagctcta cagcttcctg 21780gagcgccact cgccctactt
ccgcagccac agtgcgcaga ttaggagcgc cacttctttt 21840tgtcacttga aaaacatgta
aaaataatgt actagagaca ctttcaataa aggcaaatgc 21900ttttatttgt acactctcgg
gtgattattt acccccaccc ttgccgtctg cgccgtttaa 21960aaatcaaagg ggttctgccg
cgcatcgcta tgcgccactg gcagggacac gttgcgatac 22020tggtgtttag tgctccactt
aaactcaggc acaaccatcc gcggcagctc ggtgaagttt 22080tcactccaca ggctgcgcac
catcaccaac gcgtttagca ggtcgggcgc cgatatcttg 22140aagtcgcagt tggggcctcc
gccctgcgcg cgcgagttgc gatacacagg gttgcagcac 22200tggaacacta tcagcgccgg
gtggtgcacg ctggccagca cgctcttgtc ggagatcaga 22260tccgcgtcca ggtcctccgc
gttgctcagg gcgaacggag tcaactttgg tagctgcctt 22320cccaaaaagg gcgcgtgccc
aggctttgag ttgcactcgc accgtagtgg catcaaaagg 22380tgaccgtgcc cggtctgggc
gttaggatac agcgcctgca taaaagcctt gatctgctta 22440aaagccacct gagcctttgc
gccttcagag aagaacatgc cgcaagactt gccggaaaac 22500tgattggccg gacaggccgc
gtcgtgcacg cagcaccttg cgtcggtgtt ggagatctgc 22560accacatttc ggccccaccg
gttcttcacg atcttggcct tgctagactg ctccttcagc 22620gcgcgctgcc cgttttcgct
cgtcacatcc atttcaatca cgtgctcctt atttatcata 22680atgcttccgt gtagacactt
aagctcgcct tcgatctcag cgcagcggtg cagccacaac 22740gcgcagcccg tgggctcgtg
atgcttgtag gtcacctctg caaacgactg caggtacgcc 22800tgcaggaatc gccccatcat
cgtcacaaag gtcttgttgc tggtgaaggt cagctgcaac 22860ccgcggtgct cctcgttcag
ccaggtcttg catacggccg ccagagcttc cacttggtca 22920ggcagtagtt tgaagttcgc
ctttagatcg ttatccacgt ggtacttgtc catcagcgcg 22980cgcgcagcct ccatgccctt
ctcccacgca gacacgatcg gcacactcag cgggttcatc 23040accgtaattt cactttccgc
ttcgctgggc tcttcctctt cctcttgcgt ccgcatacca 23100cgcgccactg ggtcgtcttc
attcagccgc cgcactgtgc gcttacctcc tttgccatgc 23160ttgattagca ccggtgggtt
gctgaaaccc accatttgta gcgccacatc ttctctttct 23220tcctcgctgt ccacgattac
ctctggtgat ggcgggcgct cgggcttggg agaagggcgc 23280ttctttttct tcttgggcgc
aatggccaaa tccgccgccg aggtcgatgg ccgcgggctg 23340ggtgtgcgcg gcaccagcgc
gtcttgtgat gagtcttcct cgtcctcgga ctcgatacgc 23400cgcctcatcc gcttttttgg
gggcgcccgg ggaggcggcg gcgacgggga cggggacgac 23460acgtcctcca tggttggggg
acgtcgcgcc gcaccgcgtc cgcgctcggg ggtggtttcg 23520cgctgctcct cttcccgact
ggccatttcc ttctcctata ggcagaaaaa gatcatggag 23580tcagtcgaga agaaggacag
cctaaccgcc ccctctgagt tcgccaccac cgcctccacc 23640gatgccgcca acgcgcctac
caccttcccc gtcgaggcac ccccgcttga ggaggaggaa 23700gtgattatcg agcaggaccc
aggttttgta agcgaagacg acgaggaccg ctcagtacca 23760acagaggata aaaagcaaga
ccaggacaac gcagaggcaa acgaggaaca agtcgggcgg 23820ggggacgaaa ggcatggcga
ctacctagat gtgggagacg acgtgctgtt gaagcatctg 23880cagcgccagt gcgccattat
ctgcgacgcg ttgcaagagc gcagcgatgt gcccctcgcc 23940atagcggatg tcagccttgc
ctacgaacgc cacctattct caccgcgcgt accccccaaa 24000cgccaagaaa acggcacatg
cgagcccaac ccgcgcctca acttctaccc cgtatttgcc 24060gtgccagagg tgcttgccac
ctatcacatc tttttccaaa actgcaagat acccctatcc 24120tgccgtgcca accgcagccg
agcggacaag cagctggcct tgcggcaggg cgctgtcata 24180cctgatatcg cctcgctcaa
cgaagtgcca aaaatctttg agggtcttgg acgcgacgag 24240aagcgcgcgg caaacgctct
gcaacaggaa aacagcgaaa atgaaagtca ctctggagtg 24300ttggtggaac tcgagggtga
caacgcgcgc ctagccgtac taaaacgcag catcgaggtc 24360acccactttg cctacccggc
acttaaccta ccccccaagg tcatgagcac agtcatgagt 24420gagctgatcg tgcgccgtgc
gcagcccctg gagagggatg caaatttgca agaacaaaca 24480gaggagggcc tacccgcagt
tggcgacgag cagctagcgc gctggcttca aacgcgcgag 24540cctgccgact tggaggagcg
acgcaaacta atgatggccg cagtgctcgt taccgtggag 24600cttgagtgca tgcagcggtt
ctttgctgac ccggagatgc agcgcaagct agaggaaaca 24660ttgcactaca cctttcgaca
gggctacgta cgccaggcct gcaagatctc caacgtggag 24720ctctgcaacc tggtctccta
ccttggaatt ttgcacgaaa accgccttgg gcaaaacgtg 24780cttcattcca cgctcaaggg
cgaggcgcgc cgcgactacg tccgcgactg cgtttactta 24840tttctatgct acacctggca
gacggccatg ggcgtttggc agcagtgctt ggaggagtgc 24900aacctcaagg agctgcagaa
actgctaaag caaaacttga aggacctatg gacggccttc 24960aacgagcgct ccgtggccgc
gcacctggcg gacatcattt tccccgaacg cctgcttaaa 25020accctgcaac agggtctgcc
agacttcacc agtcaaagca tgttgcagaa ctttaggaac 25080tttatcctag agcgctcagg
aatcttgccc gccacctgct gtgcacttcc tagcgacttt 25140gtgcccatta agtaccgcga
atgccctccg ccgctttggg gccactgcta ccttctgcag 25200ctagccaact accttgccta
ccactctgac ataatggaag acgtgagcgg tgacggtcta 25260ctggagtgtc actgtcgctg
caacctatgc accccgcacc gctccctggt ttgcaattcg 25320cagctgctta acgaaagtca
aattatcggt acctttgagc tgcagggtcc ctcgcctgac 25380gaaaagtccg cggctccggg
gttgaaactc actccggggc tgtggacgtc ggcttacctt 25440cgcaaatttg tacctgagga
ctaccacgcc cacgagatta ggttctacga agaccaatcc 25500cgcccgccta atgcggagct
taccgcctgc gtcattaccc agggccacat tcttggccaa 25560ttgcaagcca tcaacaaagc
ccgccaagag tttctgctac gaaagggacg gggggtttac 25620ttggaccccc agtccggcga
ggagctcaac ccaatccccc cgccgccgca gccctatcag 25680cagcagccgc gggcccttgc
ttcccaggat ggcacccaaa aagaagctgc agctgccgcc 25740gccacccacg gacgaggagg
aatactggga cagtcaggca gaggaggttt tggacgagga 25800ggaggaggac atgatggaag
actgggagag cctagacgag gaagcttccg aggtcgaaga 25860ggtgtcagac gaaacaccgt
caccctcggt cgcattcccc tcgccggcgc cccagaaatc 25920ggcaaccggt tccagcatgg
ctacaacctc cgctcctcag gcgccgccgg cactgcccgt 25980tcgccgaccc aaccgtagat
gggacaccac tggaaccagg gccggtaagt ccaagcagcc 26040gccgccgtta gcccaagagc
aacaacagcg ccaaggctac cgctcatggc gcgggcacaa 26100gaacgccata gttgcttgct
tgcaagactg tgggggcaac atctccttcg cccgccgctt 26160tcttctctac catcacggcg
tggccttccc ccgtaacatc ctgcattact accgtcatct 26220ctacagccca tactgcaccg
gcggcagcgg cagcaacagc agcggccaca cagaagcaaa 26280ggcgaccgga tagcaagact
ctgacaaagc ccaagaaatc cacagcggcg gcagcagcag 26340gaggaggagc gctgcgtctg
gcgcccaacg aacccgtatc gacccgcgag cttagaaaca 26400ggatttttcc cactctgtat
gctatatttc aacagagcag gggccaagaa caagagctga 26460aaataaaaaa caggtctctg
cgatccctca cccgcagctg cctgtatcac aaaagcgaag 26520atcagcttcg gcgcacgctg
gaagacgcgg aggctctctt cagtaaatac tgcgcgctga 26580ctcttaagga ctagtttcgc
gccctttctc aaatttaagc gcgaaaacta cgtcatctcc 26640agcggccaca cccggcgcca
gcacctgttg tcagcgccat tatgagcaag gaaattccca 26700cgccctacat gtggagttac
cagccacaaa tgggacttgc ggctggagct gcccaagact 26760actcaacccg aataaactac
atgagcgcgg gaccccacat gatatcccgg gtcaacggaa 26820tacgcgccca ccgaaaccga
attctcctgg aacaggcggc tattaccacc acacctcgta 26880ataaccttaa tccccgtagt
tggcccgctg ccctggtgta ccaggaaagt cccgctccca 26940ccactgtggt acttcccaga
gacgcccagg ccgaagttca gatgactaac tcaggggcgc 27000agcttgcggg cggctttcgt
cacagggtgc ggtcgcccgg gcagggtata actcacctga 27060caatcagagg gcgaggtatt
cagctcaacg acgagtcggt gagctcctcg cttggtctcc 27120gtccggacgg gacatttcag
atcggcggcg ccggccgctc ttcattcacg cctcgtcagg 27180caatcctaac tctgcagacc
tcgtcctctg agccgcgctc tggaggcatt ggaactctgc 27240aatttattga ggagtttgtg
ccatcggtct actttaaccc cttctcggga cctcccggcc 27300actatccgga tcaatttatt
cctaactttg acgcggtaaa ggactcggcg gacggctacg 27360actgaatgtt ataagttcct
gtccatccgc acccactatc ttcatgttgt tgcagatgaa 27420gcgcgcaaga ccgtctgaag
ataccttcaa ccccgtgtat ccatatgaca cggaaaccgg 27480tcctccaact gtgccttttc
ttactcctcc ctttgtatcc cccaatgggt ttcaagagag 27540tccccctggg gtactctctt
tgcgcctatc cgaacctcta gttacctcca atggcatgct 27600tgcgctcaaa atgggcaacg
gcctctctct ggacgaggcc ggcaacctta cctcccaaaa 27660tgtaaccact gtgagcccac
ctctcaaaaa aaccaagtca aacataaacc tggaaatatc 27720tgcacccctc acagttacct
cagaagccct aactgtggct gccgccgcac ctctaatggt 27780cgcgggcaac acactcacca
tgcaatcaca ggccccgcta accgtgcacg actccaaact 27840tagcattgcc acccaaggac
ccctcacagt gtcagaagga aagctagccc tgcaaacatc 27900aggccccctc accaccaccg
atagcagtac ccttactatc actgcctcac cccctctaac 27960tactgccact ggtagcttgg
gcattgactt gaaagagccc atttatacac aaaatggaaa 28020actaggacta aagtacgggg
ctcctttgca tgtaacagac gacctaaaca ctttgaccgt 28080agcaactggt ccaggtgtga
ctattaataa tacttccttg caaactaaag ttactggagc 28140cttgggtttt gattcacaag
gcaatatgca acttaatgta gcaggaggac taaggattga 28200ttctcaaaac agacgcctta
tacttgatgt tagttatccg tttgatgctc aaaaccaact 28260aaatctaaga ctaggacagg
gccctctttt tataaactca gcccacaact tggatattaa 28320ctacaacaaa ggcctttact
tgtttacagc ttcaaacaat tccaaaaagc ttgaggttaa 28380cctaagcact gccaaggggt
tgatgtttga cgctacagcc atagccatta atgcaggaga 28440tgggcttgaa tttggttcac
ctaatgcacc aaacacaaat cccctcaaaa caaaaattgg 28500ccatggccta gaatttgatt
caaacaaggc tatggttcct aaactaggaa ctggccttag 28560ttttgacagc acaggtgcca
ttacagtagg aaacaaaaat aatgataagc taactttgtg 28620gaccacacca gctccatctc
ctaactgtag actaaatgca gagaaagatg ctaaactcac 28680tttggtctta acaaaatgtg
gcagtcaaat acttgctaca gtttcagttt tggctgttaa 28740aggcagtttg gctccaatat
ctggaacagt tcaaagtgct catcttatta taagatttga 28800cgaaaatgga gtgctactaa
acaattcctt cctggaccca gaatattgga actttagaaa 28860tggagatctt actgaaggca
cagcctatac aaacgctgtt ggatttatgc ctaacctatc 28920agcttatcca aaatctcacg
gtaaaactgc caaaagtaac attgtcagtc aagtttactt 28980aaacggagac aaaactaaac
ctgtaacact aaccattaca ctaaacggta cacaggaaac 29040aggagacaca actccaagtg
catactctat gtcattttca tgggactggt ctggccacaa 29100ctacattaat gaaatatttg
ccacatcctc ttacactttt tcatacattg cccaagaata 29160aagaatcgtt tgtgttatgt
ttcaacgtgt ttatttttca attgcagaaa atttcaagtc 29220atttttcatt cagtagtata
gccccaccac cacatagctt atacagatca ccgtacctta 29280atcaaactca cagaacccta
gtattcaacc tgccacctcc ctcccaacac acagagtaca 29340cagtcctttc tccccggctg
gccttaaaaa gcatcatatc atgggtaaca gacatattct 29400taggtgttat attccacacg
gtttcctgtc gagccaaacg ctcatcagtg atattaataa 29460actccccggg cagctcactt
aagttcatgt cgctgtccag ctgctgagcc acaggctgct 29520gtccaacttg cggttgctta
acgggcggcg aaggagaagt ccacgcctac atgggggtag 29580agtcataatc gtgcatcagg
atagggcggt ggtgctgcag cagcgcgcga ataaactgct 29640gccgccgccg ctccgtcctg
caggaataca acatggcagt ggtctcctca gcgatgattc 29700gcaccgcccg cagcataagg
cgccttgtcc tccgggcaca gcagcgcacc ctgatctcac 29760ttaaatcagc acagtaactg
cagcacagca ccacaatatt gttcaaaatc ccacagtgca 29820aggcgctgta tccaaagctc
atggcgggga ccacagaacc cacgtggcca tcataccaca 29880agcgcaggta gattaagtgg
cgacccctca taaacacgct ggacataaac attacctctt 29940ttggcatgtt gtaattcacc
acctcccggt accatataaa cctctgatta aacatggcgc 30000catccaccac catcctaaac
cagctggcca aaacctgccc gccggctata cactgcaggg 30060aaccgggact ggaacaatga
cagtggagag cccaggactc gtaaccatgg atcatcatgc 30120tcgtcatgat atcaatgttg
gcacaacaca ggcacacgtg catacacttc ctcaggatta 30180caagctcctc ccgcgttaga
accatatccc agggaacaac ccattcctga atcagcgtaa 30240atcccacact gcagggaaga
cctcgcacgt aactcacgtt gtgcattgtc aaagtgttac 30300attcgggcag cagcggatga
tcctccagta tggtagcgcg ggtttctgtc tcaaaaggag 30360gtagacgatc cctactgtac
ggagtgcgcc gagacaaccg agatcgtgtt ggtcgtagtg 30420tcatgccaaa tggaacgccg
gacgtagtca tatttcctga agcaaaacca ggtgcgggcg 30480tgacaaacag atctgcgtct
ccggtctcgc cgcttagatc gctctgtgta gtagttgtag 30540tatatccact ctctcaaagc
atccaggcgc cccctggctt cgggttctat gtaaactcct 30600tcatgcgccg ctgccctgat
aacatccacc accgcagaat aagccacacc cagccaacct 30660acacattcgt tctgcgagtc
acacacggga ggagcgggaa gagctggaag aaccatgttt 30720ttttttttat tccaaaagat
tatccaaaac ctcaaaatga agatctatta agtgaacgcg 30780ctcccctccg gtggcgtggt
caaactctac agccaaagaa cagataatgg catttgtaag 30840atgttgcaca atggcttcca
aaaggcaaac ggccctcacg tccaagtgga cgtaaaggct 30900aaacccttca gggtgaatct
cctctataaa cattccagca ccttcaacca tgcccaaata 30960attctcatct cgccaccttc
tcaatatatc tctaagcaaa tcccgaatat taagtccggc 31020cattgtaaaa atctgctcca
gagcgccctc caccttcagc ctcaagcagc gaatcatgat 31080tgcaaaaatt caggttcctc
acagacctgt ataagattca aaagcggaac attaacaaaa 31140ataccgcgat cccgtaggtc
ccttcgcagg gccagctgaa cataatcgtg caggtctgca 31200cggaccagcg cggccacttc
cccgccagga accatgacaa aagaacccac actgattatg 31260acacgcatac tcggagctat
gctaaccagc gtagccccga tgtaagcttg ttgcatgggc 31320ggcgatataa aatgcaaggt
gctgctcaaa aaatcaggca aagcctcgcg caaaaaagaa 31380agcacatcgt agtcatgctc
atgcagataa aggcaggtaa gctccggaac caccacagaa 31440aaagacacca tttttctctc
aaacatgtct gcgggtttct gcataaacac aaaataaaat 31500aacaaaaaaa catttaaaca
ttagaagcct gtcttacaac aggaaaaaca acccttataa 31560gcataagacg gactacggcc
atgccggcgt gaccgtaaaa aaactggtca ccgtgattaa 31620aaagcaccac cgacagctcc
tcggtcatgt ccggagtcat aatgtaagac tcggtaaaca 31680catcaggttg attcacatcg
gtcagtgcta aaaagcgacc gaaatagccc gggggaatac 31740atacccgcag gcgtagagac
aacattacag cccccatagg aggtataaca aaattaatag 31800gagagaaaaa cacataaaca
cctgaaaaac cctcctgcct aggcaaaata gcaccctccc 31860gctccagaac aacatacagc
gcttccacag cggcagccat aacagtcagc cttaccagta 31920aaaaagaaaa cctattaaaa
aaacaccact cgacacggca ccagctcaat cagtcacagt 31980gtaaaaaagg gccaagtgca
gagcgagtat atataggact aaaaaatgac gtaacggtta 32040aagtccacaa aaaacaccca
gaaaaccgca cgcgaaccta cgcccagaaa cgaaagccaa 32100aaaacccaca acttcctcaa
atcgtcactt ccgttttccc acgttacgtc acttcccatt 32160ttaagaaaac tacaattccc
aacacataca agttactccg ccctaaaacc tacgtcaccc 32220gccccgttcc cacgccccgc
gccacgtcac aaactccacc ccctcattat catattggct 32280tcaatccaaa ataaggtata
ttattgatga tgttacatcg ttaattaacg atttcgaacc 32340cggggtaccg aattcctcga
gtctagagga gcatgcgacg tcgcaattcg ccctatagtg 32400agtcgtatta caattcactg
gccgtcgttt tacaacgtcg tgactgggaa aaccctggcg 32460ttacccaact taatcgcctt
gcagcacatc cccctttcgc cagctggcgt aatagcgaag 32520aggcccgcac cgatcgccct
tcccaacagt tgcgcagcct gaatggcgaa tggaaattgt 32580aagcgttaat attttgttaa
aattcgcgtt aaatttttgt taaatcagct cattttttaa 32640ccaataggcc gaaatcggca
aaatccctta taaatcaaaa gaatagaccg agatagggtt 32700gagtgttgtt ccagtttgga
acaagagtcc actattaaag aacgtggact ccaacgtcaa 32760agggcgaaaa accgtctatc
agggcgatgg cccactacgt gaaccatcac cctaatcaag 32820ttttttgggg tcgaggtgcc
gtaaagcact aaatcggaac cctaaaggga gcccccgatt 32880tagagcttga cggggaaagc
cggcgaacgt ggcgagaaag gaagggaaga aagcgaaagg 32940agcgggcgct agggcgctgg
caagtgtagc ggtcacgctg cgcgtaacca ccacacccgc 33000cgcgcttaat gcgccgctac
agggcgcgtc ctgatgcggt attttctcct tacgcatctg 33060tgcggtattt cacaccgcat
acaggtggca cttttcgggg aaatgtgcgc ggaaccccta 33120tttgtttatt tttctaaata
cattcaaata tgtatccgct catgagacaa taaccctgat 33180aaatgcttca ataatattga
aaaaggaaga gtatgagtat tcaacatttc cgtgtcgccc 33240ttattccctt ttttgcggca
ttttgccttc ctgtttttgc tcacccagaa acgctggtga 33300aagtaaaaga tgctgaagat
cagttgggtg cacgagtggg ttacatcgaa ctggatctca 33360acagcggtaa gatccttgag
agttttcgcc ccgaagaacg ttttccaatg atgagcactt 33420ttaaagttct gctatgtggc
gcggtattat cccgtattga cgccgggcaa gagcaactcg 33480gtcgccgcat acactattct
cagaatgact tggttgagta ctcaccagtc acagaaaagc 33540atcttacgga tggcatgaca
gtaagagaat tatgcagtgc tgccataacc atgagtgata 33600acactgcggc caacttactt
ctgacaacga tcggaggacc gaaggagcta accgcttttt 33660tgcacaacat gggggatcat
gtaactcgcc ttgatcgttg ggaaccggag ctgaatgaag 33720ccataccaaa cgacgagcgt
gacaccacga tgcctgtagc aatggcaaca acgttgcgca 33780aactattaac tggcgaacta
cttactctag cttcccggca acaattaata gactggatgg 33840aggcggataa agttgcagga
ccacttctgc gctcggccct tccggctggc tggtttattg 33900ctgataaatc tggagccggt
gagcgtgggt ctcgcggtat cattgcagca ctggggccag 33960atggtaagcc ctcccgtatc
gtagttatct acacgacggg gagtcaggca actatggatg 34020aacgaaatag acagatcgct
gagataggtg cctcactgat taagcattgg taactgtcag 34080accaagttta ctcatatata
ctttagattg atttaaaact tcatttttaa tttaaaagga 34140tctaggtgaa gatccttttt
gataatctca tgaccaaaat cccttaacgt gagttttcgt 34200tccactgagc gtcagacccc
gtagaaaaga tcaaaggatc ttcttgagat cctttttttc 34260tgcgcgtaat ctgctgcttg
caaacaaaaa aaccaccgct accagcggtg gtttgtttgc 34320cggatcaaga gctaccaact
ctttttccga aggtaactgg cttcagcaga gcgcagatac 34380caaatactgt tcttctagtg
tagccgtagt taggccacca cttcaagaac tctgtagcac 34440cgcctacata cctcgctctg
ctaatcctgt taccagtggc tgctgccagt ggcgataagt 34500cgtgtcttac cgggttggac
tcaagacgat agttaccgga taaggcgcag cggtcgggct 34560gaacgggggg ttcgtgcaca
cagcccagct tggagcgaac gacctacacc gaactgagat 34620acctacagcg tgagctatga
gaaagcgcca cgcttcccga agggagaaag gcggacaggt 34680atccggtaag cggcagggtc
ggaacaggag agcgcacgag ggagcttcca gggggaaacg 34740cctggtatct ttatagtcct
gtcgggtttc gccacctctg acttgagcgt cgatttttgt 34800gatgctcgtc aggggggcgg
agcctatgga aaaacgccag caacgcggcc tttttacggt 34860tcctggcctt ttgctggcct
tttgctcaca tgttctttcc tgcgttatcc cctgattctg 34920tggataaccg tattaccgcc
tttgagtgag ctgataccgc tcgccgcagc cgaacgaccg 34980agcgcagcga gtcagtgagc
gaggaagcgg aagagcgccc aatacgcaaa ccgcctctcc 35040ccgcgcgttg gccgattcat
taatgcagct ggcacgacag gtttcccgac tggaaagcgg 35100gcagtgagcg caacgcaatt
aatgtgagtt agctcactca ttaggcaccc caggctttac 35160actttatgct tccggctcgt
atgttgtgtg gaattgtgag cggataacaa tttcacacag 35220gaaacagcta tgaccatgat
tacgccaagc tatttaggtg acactataga atactcaagc 35280tagttaatta acgttaatta
acatcatcaa taatatacct tattttggat tgaagccaat 35340atgataatga gggggtggag
tttgtgacgt ggcgcggggc gtgggaacgg ggcgggtgac 35400gtagtagtgt ggcggaagtg
tgatgttgca agtgtggcgg aacacatgta agcgacggat 35460gtggcaaaag tgacgttttt
ggtgtgcgcc ggtgtacaca ggaagtgaca attttcgcgc 35520ggttttaggc ggatgttgta
gtaaatttgg gcgtaaccga gtaagatttg gccattttcg 35580cgggaaaact gaataagagg
aagtgaaatc tgaataattt tgtgttactc atagcgcgta 35640atctctagca t
35651
User Contributions:
Comment about this patent or add new information about this topic:
People who visited this patent also read: | |
Patent application number | Title |
---|---|
20100329618 | RARE EARTH DOPED AND LARGE EFFECTIVE AREA OPTICAL FIBERS FOR FIBER LASERS AND AMPLIFIERS |
20100329617 | RADIATION-CURABLE COATING COMPOSITION |
20100329616 | PHOTOSENSITIVE RESIN COMPOSITION, METHOD FOR CONTROL OF REFRACTIVE INDEX, AND OPTICAL WAVEGUIDE AND OPTICAL COMPONENT USING THE SAME |
20100329615 | CABLE WITH FEATURES FOR DISTINGUISHING BETWEEN FIBER GROUPS |
20100329614 | COMPOSITE, OPTICAL FIBER, POWER AND SIGNAL TACTICAL CABLE |