Approaches to Enhance the Efficacy of DNA Vaccines
暂无分享,去创建一个
[1] F. Baralle,et al. Modulation of the immune response to DNA vaccine by co‐delivery ofcostimulatory molecules , 2000 .
[2] S. Hoffman,et al. Immune Response to a Hepatitis B DNA Vaccine in Aotus Monkeys: A Comparison of Vaccine Formulation, Route, and Method of Administration , 1998, Molecular medicine.
[3] L. Babiuk,et al. Recent advances in the use of DNA vaccines for the treatment of diseases of farmed animals. , 2000, Advanced drug delivery reviews.
[4] B. Coupar,et al. A prime-boost vaccination strategy using naked DNA followed by recombinant porcine adenovirus protects pigs from classical swine fever. , 2001, Veterinary microbiology.
[5] A. Aints,et al. Intercellular spread of GFP‐VP22 , 1999, The journal of gene medicine.
[6] A. Ramsay,et al. Selective induction of immune responses by cytokines coexpressed in recombinant fowlpox virus , 1994, Journal of virology.
[7] L. Babiuk,et al. Fusion of C3d molecule with bovine rotavirus VP7 or bovine herpesvirus type 1 glycoprotein D inhibits immune responses following DNA immunization. , 2001, Veterinary immunology and immunopathology.
[8] P. Primakoff,et al. A Role for the Disintegrin Domain of Cyritestin, a Sperm Surface Protein Belonging to the ADAM Family, in Mouse Sperm–Egg Plasma Membrane Adhesion and Fusion , 1997, The Journal of cell biology.
[9] J. Heeney,et al. Enhanced simian immunodeficiency virus-specific immune responses in macaques induced by priming with recombinant Semliki Forest virus and boosting with modified vaccinia virus Ankara. , 2001, Vaccine.
[10] C. Kurland. Codon bias and gene expression , 1991, FEBS letters.
[11] J. Waterkeyn,et al. Sequential nucleic acid and recombinant adenovirus vaccination induces host‐protective immune responses against Taenia ovis infection in sheep , 1997, Parasite immunology.
[12] B. Finlay,et al. Exploitation of mammalian host cell functions by bacterial pathogens. , 1997, Science.
[13] M. Tsuji,et al. Complete, long-lasting protection against malaria of mice primed and boosted with two distinct viral vectors expressing the same plasmodial antigen , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[14] Z. Xiang,et al. Manipulation of the immune response to a plasmid-encoded viral antigen by coinoculation with plasmids expressing cytokines. , 1995, Immunity.
[15] R. Malone,et al. Enhancing direct in vivo transfection with nuclease inhibitors and pulsed electrical fields. , 2002, Methods in enzymology.
[16] C. Junghans,et al. DNA vaccination with linear minimalistic (MIDGE) vectors confers protection against Leishmania major infection in mice. , 2002, Vaccine.
[17] A. Shiau,et al. Prothymosin alpha enhances protective immune responses induced by oral DNA vaccination against pseudorabies delivered by Salmonella choleraesuis. , 2001, Vaccine.
[18] R. Zinkernagel,et al. Intralymphatic immunization enhances DNA vaccination , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[19] J. Ulmer,et al. Induction of MHC class I-restricted CTL response by DNA immunization with ubiquitin-influenza virus nucleoprotein fusion antigens. , 1998, Vaccine.
[20] H. HogenEsch,et al. Immunization with DNA, adenovirus or both in biodegradable alginate microspheres: effect of route of inoculation on immune response. , 2000, Vaccine.
[21] L. Babiuk,et al. Electroporation improves the efficacy of DNA vaccines in large animals. , 2002, Vaccine.
[22] P. Mason,et al. Early protection against homologous challenge after a single dose of replication-defective human adenovirus type 5 expressing capsid proteins of foot-and-mouth disease virus (FMDV) strain A24. , 2002, Vaccine.
[23] Hansjörg Hauser,et al. Polyvalent DNA vaccines with bidirectional promoters , 2000, Journal of Molecular Medicine.
[24] D. Sherratt,et al. Repressor titration: a novel system for selection and stable maintenance of recombinant plasmids. , 1998, Nucleic acids research.
[25] G. Ott,et al. The Preparation, Characterization, and Evaluation of Cationic Microparticles for DNA Vaccine Delivery , 2001, Pharmaceutical Research.
[26] G. Delogu,et al. DNA Vaccination against Tuberculosis: Expression of a Ubiquitin-Conjugated Tuberculosis Protein Enhances Antimycobacterial Immunity , 2000, Infection and Immunity.
[27] M. Merchlinsky,et al. Prime-boost immunization with DNA and modified vaccinia virus ankara vectors expressing herpes simplex virus-2 glycoprotein D elicits greater specific antibody and cytokine responses than DNA vaccine alone. , 2002, The Journal of infectious diseases.
[28] A. Folgori,et al. Enhancing B- and T-Cell Immune Response to a Hepatitis C Virus E2 DNA Vaccine by Intramuscular Electrical Gene Transfer , 2000, Journal of Virology.
[29] Todd M. Allen,et al. Comparison of vaccine strategies using recombinant env-gag-pol MVA with or without an oligomeric Env protein boost in the SHIV rhesus macaque model. , 2002, Virology.
[30] Y. Koide,et al. Codon optimization effect on translational efficiency of DNA vaccine in mammalian cells: analysis of plasmid DNA encoding a CTL epitope derived from microorganisms. , 1999, Biochemical and biophysical research communications.
[31] W. Wade,et al. Class II-targeted antigen is superior to CD40-targeted antigen at stimulating humoral responses in vivo. , 2001, International immunopharmacology.
[32] J. N. Flynn,et al. Protection against FIV challenge infection by genetic vaccination using minimalistic DNA constructs for FIV env gene and feline IL-12 expression , 2000, AIDS.
[33] P. Payette,et al. Parenteral and mucosal prime-boost immunization strategies in mice with hepatitis B surface antigen and CpG DNA. , 2002, FEMS immunology and medical microbiology.
[34] D. Sherratt,et al. Escherichia coli strains that allow antibiotic-free plasmid selection and maintenance by repressor titration. , 2001, Nucleic acids research.
[35] Henryk Mach,et al. Replication-incompetent adenoviral vaccine vector elicits effective anti-immunodeficiency-virus immunity , 2002, Nature.
[36] S. Chen,et al. Targeting dendritic cells to enhance DNA vaccine potency. , 2001, Cancer research.
[37] H. Cooke,et al. Mammalian artificial chromosomes as vectors: progress and prospects. , 2001, Cloning and stem cells.
[38] Y. Sung,et al. Comparison of various expression plasmids for the induction of immune response by DNA immunization. , 1997, Molecules and cells.
[39] D. McDonald,et al. Plasmid DNA adsorbed onto cationic microparticles mediates target gene expression and antigen presentation by dendritic cells , 2000, Gene Therapy.
[40] G. Franchini,et al. Targeting the mucosa: genetically engineered vaccines and mucosal immune responses , 2000, Genes and Immunity.
[41] Y. Lim,et al. Biodegradable, endosome disruptive, and cationic network-type polymer as a highly efficient and nontoxic gene delivery carrier. , 2002, Bioconjugate chemistry.
[42] C. Nielsen,et al. The role of complement in the acquired immune response , 2000, Immunology.
[43] R. Zinkernagel,et al. Regulation of the Immune Response by Antigen , 2001, Science.
[44] H. Mollenkopf,et al. Development of antigen-delivery systems, based on the Escherichia coli hemolysin secretion pathway. , 1996, Gene.
[45] M. Ekhlasi-Hundrieser,et al. Sperm Adhesion Molecules: Structure and Function , 2000, Cells Tissues Organs.
[46] I. Mathiesen. Electropermeabilization of skeletal muscle enhances gene transfer in vivo , 1999, Gene Therapy.
[47] Mary S. Wu,et al. Plasmid Vectors Encoding Cholera Toxin or the Heat-Labile Enterotoxin from Escherichia coli Are Strong Adjuvants for DNA Vaccines , 2002, Journal of Virology.
[48] D. Busch,et al. T Cell Affinity Maturation by Selective Expansion during Infection , 1999, The Journal of experimental medicine.
[49] N. F. Landolfi. A chimeric IL-2/Ig molecule possesses the functional activity of both proteins. , 1991, Journal of immunology.
[50] K. Suzuki,et al. Enhanced reporter gene expression in cells transfected in the presence of DMI-2, an acid nuclease inhibitor , 1998, Gene Therapy.
[51] J. Gebhard,et al. DNA immunization utilizing a herpes simplex virus type 2 myogenic DNA vaccine protects mice from mortality and prevents genital herpes. , 2000, Vaccine.
[52] Y. Miyagi,et al. The Timing of GM-CSF Expression Plasmid Administration Influences the Th1/Th2 Response Induced by an HIV-1-Specific DNA Vaccine1 , 2000, The Journal of Immunology.
[53] D. Drew,et al. The comparative efficacy of CTLA-4 and L-selectin targeted DNA vaccines in mice and sheep. , 2001, Vaccine.
[54] R J Armitage,et al. Structural characteristics of CD40 ligand that determine biological function. , 1994, Seminars in immunology.
[55] P. Rod Dunbar,et al. Competition Between CTL Narrows the Immune Response Induced by Prime-Boost Vaccination Protocols1 , 2002, The Journal of Immunology.
[56] W. Prodinger. Complement receptor type two (CR2,CR21) , 1999, Immunologic research.
[57] D. Nettelbeck,et al. Gene therapy: designer promoters for tumour targeting. , 2000, Trends in genetics : TIG.
[58] M. McDermott,et al. Intestinal immunization of mice with antigen conjugated to anti-MHC class II antibodies. , 1995, Vaccine.
[59] G. Lukács,et al. Intracellular barriers to non-viral gene transfer. , 2002, Current gene therapy.
[60] L. Mir,et al. Therapeutic perspectives of in vivo cell electropermeabilization. , 2001, Bioelectrochemistry.
[61] W. Goebel,et al. Secretion of different listeriolysin cognates by recombinant attenuated Salmonella typhimurium: superior efficacy of haemolytic over non-haemolytic constructs after oral vaccination. , 2000, Microbes and infection.
[62] L. Vinner,et al. Gene gun DNA vaccination with Rev-independent synthetic HIV-1 gp160 envelope gene using mammalian codons. , 1999, Vaccine.
[63] P. Marrack,et al. An inverse relationship between T cell receptor affinity and antigen dose during CD4(+) T cell responses in vivo and in vitro. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[64] L Holm,et al. Codon usage and gene expression. , 1986, Nucleic acids research.
[65] A. Ramsay,et al. The prime-boost strategy: exciting prospects for improved vaccination. , 2000, Immunology today.
[66] G. Splitter,et al. Regulation of transgene expression in genetic immunization. , 1999, Brazilian journal of medical and biological research = Revista brasileira de pesquisas medicas e biologicas.
[67] W. Goebel,et al. Delivery of the p67 Sporozoite Antigen of Theileria parva by Using Recombinant Salmonella dublin: Secretion of the Product Enhances Specific Antibody Responses in Cattle , 1998, Infection and Immunity.
[68] G. Splitter,et al. A genetic immunization adjuvant system based on BVP22-antigen fusion. , 2001, Human gene therapy.
[69] I. Frazer,et al. Codon modified human papillomavirus type 16 E7 DNA vaccine enhances cytotoxic T-lymphocyte induction and anti-tumour activity. , 2002, Virology.
[70] M. Dorf,et al. HIV‐1‐specific cell‐mediated immunity is enhanced by co‐inoculation of TCA3 expression plasmid with DNA vaccine , 1997, Immunology.
[71] J. Whitton,et al. Enhancing T cell activation and antiviral protection by introducing the HIV-1 protein transduction domain into a DNA vaccine. , 2001, Human gene therapy.
[72] L. Babiuk,et al. Targeting with Bovine CD154 Enhances Humoral Immune Responses Induced by a DNA Vaccine in Sheep1 , 2003, The Journal of Immunology.
[73] T. Wu,et al. Improving Vaccine Potency Through Intercellular Spreading and Enhanced MHC Class I Presentation of Antigen1 , 2001, The Journal of Immunology.
[74] K. Hayashi,et al. Topical Administration of HSV gD-IL-2 DNA Is Highly Protective Against Murine Herpetic Stromal Keratitis , 2002, Cornea.
[75] G. Stark,et al. The antiviral effects of the interferons and their inhibition. , 1992, Journal of interferon research.
[76] P. Khavari,et al. Immunization via hair follicles by topical application of naked DNA to normal skin , 1999, Nature Biotechnology.
[77] N. Fairweather,et al. Influence of codon usage on the immunogenicity of a DNA vaccine against tetanus. , 2000, Vaccine.
[78] S. Caldeira,et al. A DNA vaccine based on a shuffled E7 oncogene of the human papillomavirus type 16 (HPV 16) induces E7-specific cytotoxic T cells but lacks transforming activity. , 2001, Vaccine.
[79] M. Colombo,et al. Gene transfer in dendritic cells, induced by oral DNA vaccination with Salmonella typhimurium, results in protective immunity against a murine fibrosarcoma. , 1998, Blood.
[80] G. Gregoriadis,et al. A role for liposomes in genetic vaccination. , 2002, Vaccine.
[81] Dexiang Chen,et al. Serum and Mucosal Immune Responses to an Inactivated Influenza Virus Vaccine Induced by Epidermal Powder Immunization , 2001, Journal of Virology.
[82] G. Splitter,et al. Distinctions between Bovine Herpesvirus 1 and Herpes Simplex Virus Type 1 VP22 Tegument Protein Subcellular Associations , 2000, Journal of Virology.
[83] H. Hauser,et al. Polyvalent vaccination against hepatitis B surface and core antigen using a dicistronic expression plasmid. , 1998, Vaccine.
[84] Philippa Marrack,et al. T Cells Compete for Access to Antigen-Bearing Antigen-Presenting Cells , 2000, The Journal of experimental medicine.
[85] N. Ishii,et al. Topical application of HIV DNA vaccine with cytokine-expression plasmids induces strong antigen-specific immune responses. , 2001, Vaccine.
[86] K. Rosenthal,et al. Long-lived cytotoxic T lymphocyte memory in mucosal tissues after mucosal but not systemic immunization , 1996, Journal of Experimental Medicine.
[87] J. Schlom,et al. Phase I trial of a recombinant vaccinia virus encoding carcinoembryonic antigen in metastatic adenocarcinoma: comparison of intradermal versus subcutaneous administration. , 1999, Clinical cancer research : an official journal of the American Association for Cancer Research.
[88] A. Hüser,et al. Advances in the development of non-human viral DNA-vectors for gene delivery. , 2002, Current gene therapy.
[89] S. Wesselingh,et al. Successful Boosting of a DNA Measles Immunization with an Oral Plant-Derived Measles Virus Vaccine , 2002, Journal of Virology.
[90] R. Purcell,et al. Route and Method of Delivery of DNA Vaccine Influence Immune Responses in Mice and Non-Human Primates , 1999, Molecular medicine.
[91] J. Y. Scheerlinck,et al. Genetic adjuvants for DNA vaccines. , 2001, Vaccine.
[92] G. Elliott,et al. Intercellular Trafficking and Protein Delivery by a Herpesvirus Structural Protein , 1997, Cell.
[93] 岡田 榮一. Intranasal immunization of a DNA vaccine with IL-12-and granulocyte-macrophage colony-stimulating factor (GM-CSF)-expressing plasmids in liposomes induces strong mucosal and cell-mediated immune responses against HIV-1 antigens , 1999 .
[94] A. Lew,et al. Targeting Improves the Efficacy of a DNA Vaccine against Corynebacterium pseudotuberculosis in Sheep , 1999, Infection and Immunity.
[95] F. Newman,et al. Safety and immunogenicity of varying dosages of trivalent inactivated influenza vaccine administered by needle-free jet injectors. , 2001, Vaccine.
[96] L. Babiuk,et al. Bovine herpesvirus 1: immune responses in mice and cattle injected with plasmid DNA , 1993, Journal of virology.
[97] Y. Sinha,et al. Production of antibodies by inoculation into lymph nodes. , 1983, Methods in enzymology.
[98] R. Saffery,et al. Strategies for engineering human chromosomes with therapeutic potential , 2002, The journal of gene medicine.
[99] M. Croft,et al. Functional cooperation between T helper cell determinants. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[100] P. Rota,et al. C3d enhancement of neutralizing antibodies to measles hemagglutinin. , 2001, Vaccine.
[101] A. Chalian,et al. Modulation of amplitude and direction of in vivo immune responses by co‐administration of cytokine gene expression cassettes with DNA immunogens , 1998, European journal of immunology.
[102] S. Akira,et al. Human TLR9 confers responsiveness to bacterial DNA via species-specific CpG motif recognition , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[103] H. McShane,et al. Enhanced Immunogenicity of CD4+ T-Cell Responses and Protective Efficacy of a DNA-Modified Vaccinia Virus Ankara Prime-Boost Vaccination Regimen for Murine Tuberculosis , 2001, Infection and Immunity.
[104] L. Babiuk,et al. Gene Gun-Mediated DNA Immunization Primes Development of Mucosal Immunity against Bovine Herpesvirus 1 in Cattle , 2000, Journal of Virology.
[105] Stephen Shaw,et al. Lymph-Borne Chemokines and Other Low Molecular Weight Molecules Reach High Endothelial Venules via Specialized Conduits While a Functional Barrier Limits Access to the Lymphocyte Microenvironments in Lymph Node Cortex , 2000, The Journal of experimental medicine.
[106] P. Gleeson,et al. Hijacking a chaperone: manipulation of the MHC class II presentation pathway. , 2000, Immunology today.
[107] Marion Becker,et al. Enhanced immunogenicity for CD8+ T cell induction and complete protective efficacy of malaria DNA vaccination by boosting with modified vaccinia virus Ankara , 1998, Nature Medicine.
[108] M. Saier,et al. Differences in codon usage among genes encoding proteins of different function in Rhodobacter capsulatus. , 1991, Research in microbiology.
[109] R. Weiss,et al. Gene gun bombardment with gold particles displays a particular Th2-promoting signal that over-rules the Th1-inducing effect of immunostimulatory CpG motifs in DNA vaccines. , 2002, Vaccine.
[110] Y. Kawaoka,et al. Epidermal immunization by a needle-free powder delivery technology: Immunogenicity of influenza vaccine and protection in mice , 2000, Nature Medicine.
[111] M. Fenton,et al. Toll-like receptors: a family of pattern-recognition receptors in mammals , 2002, Genome Biology.
[112] R. Mumper,et al. Chitosan-based nanoparticles for topical genetic immunization. , 2001, Journal of controlled release : official journal of the Controlled Release Society.
[113] Y. Maa,et al. Epidermal powder immunization with a recombinant HIV gp120 targets Langerhans cells and induces enhanced immune responses. , 2002, AIDS research and human retroviruses.
[114] B. Pulendran,et al. Distinct dendritic cell subsets differentially regulate the class of immune response in vivo. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[115] Layton,et al. Immunogenicity of Ty-VLP bearing a CD8(+) T cell epitope of the CS protein of P. yoelii: enhanced memory response by boosting with recombinant vaccinia virus , 2000, Vaccine.
[116] C. Maliszewski,et al. Dendritic Cells Recruitment and In Vivo Priming of CD8+ CTL Induced by a Single Topical or Transepithelial Immunization Via the Buccal Mucosa with Measles Virus Nucleoprotein1 , 2001, The Journal of Immunology.
[117] P. Tiollais,et al. Muscle-specific expression of hepatitis B surface antigen: no effect on DNA-raised immune responses. , 1999, Virology.
[118] M. Saier. Differential codon usage: a safeguard against inappropriate expression of specialized genes? , 1995, FEBS letters.
[119] R. Buckland,et al. Class I-restricted CTL induction by mucosal immunization with naked DNA encoding measles virus haemagglutinin. , 1997, The Journal of general virology.
[120] W. Mcclements,et al. Immunization of non-human primates with DNA vaccines. , 1997, Vaccine.
[121] E. Raz,et al. Oligonucleotide Adjuvants for T Helper 1 (Th1)–specific Vaccination , 1997, The Journal of experimental medicine.
[122] T. Sauerbruch,et al. A novel minimal-size vector (MIDGE) improves transgene expression in colon carcinoma cells and avoids transfection of undesired DNA. , 2001, Molecular therapy : the journal of the American Society of Gene Therapy.
[123] C. Bangham,et al. Intradermal DNA immunization of mice against influenza A virus using the novel PowderJect system. , 1998, Vaccine.
[124] P. R. Jensen,et al. Generation of a synthetic mammalian promoter library by modification of sequences spacing transcription factor binding sites. , 2002, Gene.
[125] D. Montefiori,et al. Enhanced avidity maturation of antibody to human immunodeficiency virus envelope: DNA vaccination with gp120-C3d fusion proteins. , 2001, AIDS research and human retroviruses.
[126] J. Ulmer,et al. Induction of Potent Immune Responses by Cationic Microparticles with Adsorbed Human Immunodeficiency Virus DNA Vaccines , 2001, Journal of Virology.
[127] J. Letesson,et al. Yersinia enterocolitica as a Vehicle for a Naked DNA Vaccine Encoding Brucella abortus Bacterioferritin or P39 Antigen , 2002, Infection and Immunity.
[128] L. Babiuk,et al. Immunization of neonates with DNA encoding a bovine herpesvirus glycoprotein is effective in the presence of maternal antibodies. , 1999, Viral immunology.
[129] I. Frazer,et al. Polynucleotide viral vaccines: codon optimisation and ubiquitin conjugation enhances prophylactic and therapeutic efficacy. , 2001, Vaccine.
[130] T. Wu,et al. Improving DNA Vaccine Potency by Linking Marek's Disease Virus Type 1 VP22 to an Antigen , 2002, Journal of Virology.
[131] T. Wild,et al. Construction of vaccinia virus recombinants expressing several measles virus proteins and analysis of their efficacy in vaccination of mice. , 1992, The Journal of general virology.
[132] I. Sandlie,et al. 'Troy-bodies': antibodies as vector proteins for T cell epitopes. , 2001, Biomolecular engineering.
[133] V. Vonka,et al. Modified HPV16 E7 Genes as DNA Vaccine against E7-Containing Oncogenic Cells. , 2001, Virology.
[134] Y. Sung,et al. IL-6 induces long-term protective immunity against a lethal challenge of influenza virus. , 1999, Vaccine.
[135] R. Anderson,et al. Antigen processing in vivo and the elicitation of primary CTL responses. , 1995, Journal of immunology.
[136] P. Gray,et al. Use of aurintricarboxylic acid as an inhibitor of nucleases during nucleic acid isolation. , 1977, Nucleic acids research.
[137] D. McDonald,et al. Distribution of DNA Vaccines Determines Their Immunogenicity After Intramuscular Injection in Mice1 , 2000, The Journal of Immunology.
[138] J. Ulmer,et al. Enhancement of DNA vaccine potency by electroporation in vivo. , 2000, Journal of biotechnology.
[139] D. Kozbor,et al. Oral DNA vaccination promotes mucosal and systemic immune responses to HIV envelope glycoprotein. , 2000, Virology.
[140] J. Miyazaki,et al. Intranasal immunization of a DNA vaccine with IL-12- and granulocyte-macrophage colony-stimulating factor (GM-CSF)-expressing plasmids in liposomes induces strong mucosal and cell-mediated immune responses against HIV-1 antigens. , 1997, Journal of immunology.
[141] S. Hoffman,et al. Codon Optimization of Gene Fragments EncodingPlasmodium falciparum Merzoite Proteins Enhances DNA Vaccine Protein Expression and Immunogenicity in Mice , 2001, Infection and Immunity.
[142] W. Goebel,et al. Delivery of antigen-encoding plasmid DNA into the cytosol of macrophages by attenuated suicide Listeria monocytogenes , 1998, Nature Biotechnology.
[143] S. Johnston,et al. Protection against mycoplasma infection using expression-library immunization , 1995, Nature.
[144] W. Lin,et al. Development of Th1 and Th2 populations and the nature of immune responses to hepatitis B virus DNA vaccines can be modulated by codelivery of various cytokine genes. , 1998, Journal of immunology.
[145] D. Zelterman,et al. Ubiquitin-Fused and/or Multiple Early Genes from Cottontail Rabbit Papillomavirus as DNA Vaccines , 2002, Journal of Virology.
[146] W. Goebel,et al. Delivery of protein antigens and DNA by attenuated intracellular bacteria. , 2002, International journal of medical microbiology : IJMM.
[147] C. Janeway,et al. Innate Immunity: The Virtues of a Nonclonal System of Recognition , 1997, Cell.
[148] H. Mizuguchi,et al. IRES-dependent second gene expression is significantly lower than cap-dependent first gene expression in a bicistronic vector. , 2000, Molecular therapy : the journal of the American Society of Gene Therapy.
[149] Y. Koide,et al. Optimization of codon usage of plasmid DNA vaccine is required for the effective MHC class I-restricted T cell responses against an intracellular bacterium. , 1998, Journal of immunology.
[150] C. Blank,et al. CpG‐containing synthetic oligonucleotides promote B and cytotoxic T cell responses to protein antigen: A new class of vaccine adjuvants , 1997, European journal of immunology.
[151] D. Tang,et al. Genetic immunization is a simple method for eliciting an immune response , 1992, Nature.
[152] J. Reimann,et al. Priming of immune responses to hepatitis B surface antigen with minimal DNA expression constructs modified with a nuclear localization signal peptide , 2001, Journal of Molecular Medicine.
[153] L. Babiuk,et al. Compatibility of plasmids expressing different antigens in a single DNA vaccine formulation. , 1998, The Journal of general virology.
[154] E. Raz,et al. Immunostimulatory DNA Sequences Necessary for Effective Intradermal Gene Immunization , 1996, Science.
[155] E. Gehan,et al. Phase I study in advanced cancer patients of a diversified prime-and-boost vaccination protocol using recombinant vaccinia virus and recombinant nonreplicating avipox virus to elicit anti-carcinoembryonic antigen immune responses. , 2000, Journal of clinical oncology : official journal of the American Society of Clinical Oncology.
[156] J. Kim,et al. In vivo engineering of a cellular immune response by coadministration of IL-12 expression vector with a DNA immunogen. , 1997, Journal of immunology.
[157] L. Babiuk,et al. Vaccination of pigs with a recombinant porcine adenovirus expressing the gD gene from pseudorabies virus. , 2001, Vaccine.
[158] M. Graf,et al. Multiple Effects of Codon Usage Optimization on Expression and Immunogenicity of DNA Candidate Vaccines Encoding the Human Immunodeficiency Virus Type 1 Gag Protein , 2001, Journal of Virology.
[159] D. Weiner,et al. Antigen‐specific humoral and cellular immune responses can be modulated in rhesus macaques through the use of IFN‐γ, IL‐12, or IL‐18 gene adjuvants , 1999, Journal of medical primatology.
[160] R. Malone,et al. Cutaneous transfection and immune responses to intradermal nucleic acid vaccination are significantly enhanced by in vivo electropermeabilization. , 2001, Molecular therapy : the journal of the American Society of Gene Therapy.
[161] R. Mumper,et al. Genetic Immunization Using Nanoparticles Engineered from Microemulsion Precursors , 2002, Pharmaceutical Research.
[162] W. Gause,et al. Th1- and Th2-cell commitment during infectious disease: asymmetry in divergent pathways. , 2001, Trends in immunology.
[163] Y. Reiter,et al. A functional recombinant single-chain T cell receptor fragment capable of selectively targeting antigen-presenting cells , 2002, Cancer Immunology, Immunotherapy.
[164] Mary Schaefer,et al. Increased Expression and Immunogenicity of Sequence-Modified Human Immunodeficiency Virus Type 1 gag Gene , 2000, Journal of Virology.
[165] A. Krieg,et al. CpG motifs in bacterial DNA and their immune effects. , 2002, Annual review of immunology.
[166] L. Babiuk,et al. Immunization with a dicistronic plasmid expressing a truncated form of bovine herpesvirus-1 glycoprotein D and the amino-terminal subunit of glycoprotein B results in reduced gB-specific immune responses. , 2003, Virology.
[167] L. Babiuk,et al. Augmentation of cellular immune responses to bovine herpesvirus-1 glycoprotein D by vaccination with CpG-enhanced plasmid vectors. , 2002, The Journal of general virology.
[168] H. McShane. Prime-boost immunization strategies for infectious diseases. , 2002, Current opinion in molecular therapeutics.
[169] A. Craiu,et al. Augmentation and suppression of immune responses to an HIV-1 DNA vaccine by plasmid cytokine/Ig administration. , 1998, Journal of immunology.
[170] L. Babiuk,et al. Induction of mucosal immune responses following enteric immunization with antigen delivered in alginate microspheres. , 2002, Veterinary immunology and immunopathology.
[171] H. Zentgraf,et al. Enhanced immunogenicity of HPV 16 E7 fusion proteins in DNA vaccination. , 2002, Virology.
[172] S. G. Campbell,et al. Immunity to intracellular bacteria. , 1982, Veterinary immunology and immunopathology.
[173] A. Phelan,et al. Intercellular delivery of functional p53 by the herpesvirus protein VP22 , 1998, Nature Biotechnology.
[174] B. Rouse,et al. Prime-Boost Immunization with DNA Vaccine: Mucosal Route of Administration Changes the Rules1 , 2001, The Journal of Immunology.
[175] C. Duarte,et al. A family of compact plasmid vectors for DNA immunization in humans. , 2000, Biochemical and biophysical research communications.
[176] A. Phelan,et al. Intercellular delivery of thymidine kinase prodrug activating enzyme by the herpes simplex virus protein, VP22 , 1999, Gene Therapy.
[177] B. Wahrén,et al. Protection against influenza virus challenge by topical application of influenza DNA vaccine. , 2001, Vaccine.
[178] HL Davis,et al. Designing gene therapy vectors: avoiding immune responses by using tissue-specific promoters , 2001, Gene Therapy.
[179] N. Pedersen,et al. Immunization of Cats against Feline Immunodeficiency Virus (FIV) Infection by Using Minimalistic Immunogenic Defined Gene Expression Vector Vaccines Expressing FIV gp140 Alone or with Feline Interleukin-12 (IL-12), IL-16, or a CpG Motif , 2000, Journal of Virology.
[180] R. Webster,et al. DNA vaccines. , 1996, AIDS research and human retroviruses.
[181] L. Babiuk,et al. Particle-mediated DNA immunization of cattle confers long-lasting immunity against bovine herpesvirus-1. , 1999, Virology.
[182] C. Harding,et al. CpG Oligodeoxynucleotides Act as Adjuvants that Switch on T Helper 1 (Th1) Immunity , 1997, The Journal of experimental medicine.
[183] Carol Kim,et al. CD40 activation boosts T cell immunity in vivo by enhancing T cell clonal expansion and delaying peripheral T cell deletion. , 1999, Journal of immunology.
[184] K. Hayashi,et al. The effect of immunization with herpes simplex virus glycoprotein D fused with interleukin-2 against murine herpetic keratitis. , 2001, Japanese journal of ophthalmology.
[185] L. Babiuk,et al. Induction of immune responses to bovine herpesvirus type 1 gD in passively immune mice after immunization with a DNA-based vaccine. , 1999, The Journal of general virology.
[186] T. Wu,et al. Enhancement of Sindbis Virus Self-Replicating RNA Vaccine Potency by Linkage of Herpes Simplex Virus Type 1 VP22 Protein to Antigen , 2001, Journal of Virology.
[187] J. Ulmer,et al. Increased DNA Vaccine Delivery and Immunogenicity by Electroporation In Vivo , 2000, The Journal of Immunology.
[188] R. Mumper,et al. Topical immunization using nanoengineered genetic vaccines. , 2002, Journal of controlled release : official journal of the Controlled Release Society.
[189] C. Kurland,et al. Codon preferences in free-living microorganisms. , 1990, Microbiological reviews.
[190] J. Brady,et al. Enhanced responses to a DNA vaccine encoding a fusion antigen that is directed to sites of immune induction , 1998, Nature.
[191] S. Johnston,et al. Genetic immunization: what's in a name? , 2002, Archives of medical research.
[192] T. Chakraborty,et al. Oral delivery of DNA vaccines using attenuated Salmonella typhimurium as carrier. , 2000, FEMS immunology and medical microbiology.
[193] W. W. Nichols,et al. Plasmid DNA Vaccines: Tissue Distribution and Effects of DNA Sequence, Adjuvants and Delivery Method on Integration into Host DNA , 2001, Intervirology.
[194] G. Lewis,et al. Recent advances with recombinant bacterial vaccine vectors. , 2000, Molecular medicine today.
[195] M. Schroff,et al. Influence of ballistic gene transfer on antigen-presenting cells in murine corneas , 2002, Graefe's Archive for Clinical and Experimental Ophthalmology.
[196] S. Akira,et al. A Toll-like receptor recognizes bacterial DNA , 2000, Nature.
[197] J. M. de Pereda,et al. CD4+ T Cells Induced by a DNA Vaccine: Immunological Consequences of Epitope-Specific Lysosomal Targeting , 2001, Journal of Virology.
[198] R. Stout,et al. Hepatitis A vaccine administration: comparison between jet-injector and needle injection. , 2000, Vaccine.
[199] J. Bramson,et al. The efficacy of genetic vaccination is dependent upon the nature of the vector system and antigen , 2002, Expert opinion on biological therapy.
[200] A. Hill,et al. Enhanced CD8 T cell immunogenicity and protective efficacy in a mouse malaria model using a recombinant adenoviral vaccine in heterologous prime-boost immunisation regimes. , 2002, Vaccine.
[201] U. Spengler,et al. Targeting of hepatitis C virus core protein for MHC I or MHC II presentation does not enhance induction of immune responses to DNA vaccination. , 1999, DNA and cell biology.
[202] R. Wattiaux,et al. Endosomes, lysosomes: their implication in gene transfer. , 2000, Advanced drug delivery reviews.
[203] B. Wittig,et al. Ballistic transfer of minimalistic immunologically defined expression constructs for IL4 and CTLA4 into the corneal epithelium in mice after orthotopic corneal allograft transplantation , 2000, Graefe's Archive for Clinical and Experimental Ophthalmology.
[204] R. Malone,et al. DNA transfection of macaque and murine respiratory tissue is greatly enhanced by use of a nuclease inhibitor , 2002, The journal of gene medicine.
[205] R. Malone,et al. Efficient nonviral cutaneous transfection. , 2000, Molecular therapy : the journal of the American Society of Gene Therapy.
[206] C. Junghans,et al. Minimizing side effects of ballistic gene transfer into the murine corneal epithelium , 2002, Graefe's Archive for Clinical and Experimental Ophthalmology.
[207] M. Plebanski,et al. Ty Virus-Like Particles, DNA Vaccines and Modified Vaccinia Virus Ankara; Comparisons and Combinations , 1999, Biological chemistry.
[208] B. Rouse,et al. Protection by minigenes: a novel approach of DNA vaccines. , 1998, Vaccine.
[209] J. Kehren,et al. Oral Administration of Hapten Inhibits In Vivo Induction of Specific Cytotoxic CD8+ T Cells Mediating Tissue Inflammation: A Role for Regulatory CD4+ T Cells1 , 2000, The Journal of Immunology.
[210] R. Mumper,et al. Coating of cationized protein on engineered nanoparticles results in enhanced immune responses. , 2002, International journal of pharmaceutics.
[211] A. Graff,et al. Virus-assisted loading of polymer nanocontainer , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[212] C. Czerkinsky,et al. Antigen presentation in the murine oral epithelium , 1996, Immunology.
[213] S. Zolla-Pazner,et al. Long-term protection of chimpanzees against high-dose HIV-1 challenge induced by immunization , 1997, Nature Medicine.
[214] M. Bergeron,et al. Targeting lymph nodes with liposomes bearing anti-HLA-DR Fab' fragments. , 1999, Biochimica et biophysica acta.
[215] D. Montefiori,et al. Potent, protective anti-HIV immune responses generated by bimodal HIV envelope DNA plus protein vaccination. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[216] H. Harashima,et al. Size and topology of exogenous DNA as determinant factors of transgene transcription in mammalian cells , 2002, Gene Therapy.
[217] S Karlin,et al. Codon usages in different gene classes of the Escherichia coli genome , 1998, Molecular microbiology.
[218] R. Howard,et al. Applications of DNA shuffling to pharmaceuticals and vaccines. , 1997, Current opinion in biotechnology.
[219] M. Pagel,et al. Evolution of Base Composition and Codon Usage Bias in the Genus Flavivirus , 2001, Journal of Molecular Evolution.
[220] M. Aidoo,et al. A prime-boost immunisation regimen using DNA followed by recombinant modified vaccinia virus Ankara induces strong cellular immune responses against the Plasmodium falciparum TRAP antigen in chimpanzees. , 2001, Vaccine.
[221] P. Peterson,et al. Humoral and cellular immune responses to HIV-1 nef in mice DNA-immunised with non-replicating or self-replicating expression vectors. , 1999, Vaccine.
[222] J. Fukushima,et al. 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 , 2001, Clinical and experimental immunology.
[223] S. Hwang,et al. Vaccination with an ovalbumin/interleukin-4 fusion DNA efficiently induces Th2 cell-mediated immune responses in an ovalbumin-specific manner , 1998, Archives of pharmacal research.
[224] G. Acsadi,et al. Direct gene transfer into mouse muscle in vivo. , 1990, Science.
[225] N. Panayotatos. Recombinant protein production with minimal-antibiotic-resistance vectors. , 1988, Gene.
[226] P. Spear,et al. Single amino acid substitutions in gD of herpes simplex virus 1 confer resistance to gD-mediated interference and cause cell-type-dependent alterations in infectivity. , 1994, Virology.
[227] J. Clegg,et al. Poly(DL-lactide-co-glycolide)-encapsulated plasmid DNA elicits systemic and mucosal antibody responses to encoded protein after oral administration. , 1997, Vaccine.
[228] C. Renner,et al. Comparison of a Monte Carlo Strategy with a Combined DG/MDSA Method for Structure Determination of Bicyclic Peptides , 1999 .
[229] Y. Wang,et al. DNA immunization with fusion genes encoding different regions of hepatitis C virus E2 fused to the gene for hepatitis B surface antigen elicits immune responses to both HCV and HBV. , 2002, World journal of gastroenterology.
[230] D. Tang,et al. DNA-based non-invasive vaccination onto the skin. , 1999, Vaccine.
[231] S. Hoffman,et al. Multistage Multiantigen Heterologous Prime Boost Vaccine forPlasmodium knowlesi Malaria Provides Partial Protection in Rhesus Macaques , 2001, Infection and Immunity.
[232] L. Babiuk,et al. Priming by DNA immunization augments T-cell responses induced by modified live bovine herpesvirus vaccine. , 2001, The Journal of general virology.
[233] P. Palese,et al. Priming with recombinant influenza virus followed by administration of recombinant vaccinia virus induces CD8+ T-cell-mediated protective immunity against malaria. , 1993, Proceedings of the National Academy of Sciences of the United States of America.