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Agents Chemother., 43, 377, 10.1128\u002FAAC.43.2.377\nCannon, M.J., Dollard, S.C., Black, J.B., Edlin, B.R., Hannah, C., Hogan, S.E., Patel, M., Jaffe, H.W., Offermann, M.K., Spira, T.J., Pellett, P.E., Gunthel, C.J., 2003. Risk factors for Kaposi's sarcoma in men seropositive for both Human herpesvirus 8 and human immunodeficiency virus. AIDS 17, 215–222.\nCesarman, 1995, Kaposi's sarcoma-associated herpesvirus-like DNA sequences in AIDS-related body cavity-based lymphomas, New Engl. J. Med., 332, 1186, 10.1056\u002FNEJM199505043321802\nChang, 1994, Identification of herpesvirus-like DNA sequences in AIDS-associated Kaposi's sarcoma, Science, 266, 1865, 10.1126\u002Fscience.7997879\nChatlynne, 1999, Seroepidemiology of Kaposi's sarcoma-associated herpesvirus (KSHV), Semin. Cancer Biol., 9, 175, 10.1006\u002Fscbi.1998.0089\nKennedy, 1997, HHV8 and Kaposi's sarcoma: a time cohort study, Mol. 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Microbiol., 37, 1298, 10.1128\u002FJCM.37.5.1298-1301.1999\nSaid, 1996, Kaposi's sarcoma-associated herpesvirus (KSHV or HHV8) in primary effusion lymphoma: ultrastructural demonstration of herpesvirus in lymphoma cells, Blood, 87, 4937, 10.1182\u002Fblood.V87.12.4937.bloodjournal87124937\nSoulier, 1995, Kaposi's sarcoma-associated herpesvirus-like DNA sequences in multicentric Castleman's disease, Blood, 86, 1276, 10.1182\u002Fblood.V86.4.1276.bloodjournal8641276\nStamey, 2001, Quantitative, fluorogenic probe PCR assay for detection of human herpesvirus 8 DNA in clinical specimens, J. Clin. Microbiol., 39, 3537, 10.1128\u002FJCM.39.10.3537-3540.2001\nYang, 1993, Quantative measurement of nonisotopically labeled polymerase chain reaction product, Anal. 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Immunol. Methods, 294, 15, 10.1016\u002Fj.jim.2004.08.008\nAna-Sosa-Batiz, 2016, Influenza-specific antibody-dependent phagocytosis, PLoS One, 11, e0154461, 10.1371\u002Fjournal.pone.0154461\nBaz, 2013, H5N1 vaccines in humans, Virus Res., 178, 78, 10.1016\u002Fj.virusres.2013.05.006\nBlack, 2011, Hemagglutination inhibition antibody titers as a correlate of protection for inactivated influenza vaccines in children, Pediatric Infect. Dis. J., 30, 1081, 10.1097\u002FINF.0b013e3182367662\nCauchemez, 2012, Influenza infection rates, measurement errors and the interpretation of paired serology, PLoS Pathog., 8, e1003061, 10.1371\u002Fjournal.ppat.1003061\nChung, 2009, Rapid degranulation of NK cells following activation by HIV-specific antibodies, J. Immunol., 182, 1202, 10.4049\u002Fjimmunol.182.2.1202\nCo, 2014, Relationship of preexisting influenza hemagglutination inhibition, complement-dependent lytic, and antibody-dependent cellular cytotoxicity antibodies to the development of clinical illness in a prospective study of A(H1N1)pdm09 Influenza in children, Viral Immunol., 27, 375, 10.1089\u002Fvim.2014.0061\nCox, 2016, HA antibody-mediated FcgammaRIIIa activity is both dependent on FcR engagement and interactions between HA and sialic acids, Front. Immunol., 7, 399, 10.3389\u002Ffimmu.2016.00399\nDefang, 2012, Comparative analysis of hemagglutination inhibition titers generated using temporally matched serum and plasma samples, PLoS One, 7, e48229, 10.1371\u002Fjournal.pone.0048229\nDiLillo, 2014, Broadly neutralizing hemagglutinin stalk-specific antibodies require FcgammaR interactions for protection against influenza virus in vivo, Nat. 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AIDS, 3, 206\nArthos, 1989, Identification of the residues in human CD4 critical for the binding of HIV, Cell, 57, 469, 10.1016\u002F0092-8674(89)90922-7\nAshkenazi, 1990, Mapping the CD4 binding site for human immunodeficiency virus by alanine-scanning mutagenesis, 87, 7150\nAshorn, 1990, Human immunodeficiency virus envelope glycoprotein\u002FCD4-mediated fusion of nonprimate cells with human cells, J. Virol., 64, 2149, 10.1128\u002FJVI.64.5.2149-2156.1990\nBalzarini, 1991, Alpha-(1–3)- and alpha-(1–6)-d-mannose-specific plant lectins are markedly inhibitory to human immunodeficiency virus and cytomegalovirus infections in vitro, Antimicrob. Agents Chemother., 35, 410, 10.1128\u002FAAC.35.3.410\nBrodsky, 1990, Analysis of the site in CD4 that binds to the HIV envelope glycoprotein, J. Immunol., 144, 3078, 10.4049\u002Fjimmunol.144.8.3078\nByrn, 1989, Characterization of in vitro inhibition of human immunodeficiency virus by purified recombinant CD4, J. Virol., 63, 4370, 10.1128\u002FJVI.63.10.4370-4375.1989\nCallahan, 1991, Dextran sulfate blocks antibody binding to the principal neutralizing domain of human immunodeficiency virus type 1 without interfering with gp120-CD4 interactions, J. Virol., 65, 1543, 10.1128\u002FJVI.65.3.1543-1550.1991\nChamat, 1992, Two major groups of neutralizing anti-gp120 antibodies exist in HIV-infected individuals, J. Immunol., 149, 649, 10.4049\u002Fjimmunol.149.2.649\nCordonnier, 1989, Single amino-acid changes in HIV envelope affect viral tropism and receptor binding, Nature, 340, 571, 10.1038\u002F340571a0\nCrowe, 1990, Full-length recombinant CD4 and recombinant gp120 inhibit fusion between HIV-infected macrophages and uninfected CD4-expressing T-lymphoblastoid cells, AIDS Res. Hum. Retroviruses, 6, 1031, 10.1089\u002Faid.1990.6.1031\nDalgleish, 1984, The CD4 (T4) antigen is an essential component of the receptor for the AIDS retrovirus, Nature, 312, 763, 10.1038\u002F312763a0\nDeen, 1988, A soluble form of CD4 (T4) protein inhibits AIDS virus infection, Nature, 331, 82, 10.1038\u002F331082a0\nDiamond, 1988, Inhibition of CD4+ T cell function by the HIV envelope protein, gp120, J. Immunol., 141, 3715, 10.4049\u002Fjimmunol.141.11.3715\nEzekowitz, 1989, A human serum mannose-binding protein inhibits in vitro infection by the human immunodeficiency virus, J. Exp. Med., 169, 185, 10.1084\u002Fjem.169.1.185\nFenouillet, 1989, Role of N-linked glycans in the interaction between the envelope glycoprotein of human immunodeficiency virus and its CD4 cellular receptor. Structural enzymatic analysis, J. Exp. Med., 169, 807, 10.1084\u002Fjem.169.3.807\nGilbert, 1990, Human immunodeficiency virus grown in CD4-expressing cells is coated with CD4, 307\nGilbert, 1991, Enzyme-linked immunoassay for human immunodeficiency virus type 1 envelope glycoprotein 120, J. Clin. Microbiol., 29, 142, 10.1128\u002FJCM.29.1.142-147.1991\nHabeshaw, 1989, The relevance of HIV env\u002FCD4 interactions to the pathogenesis of acquired immune deficiency syndrome, J. Acq. Immunol. Syndr., 2, 457\nHansen, 1990, Inhibition of human immunodeficiency virus (HIV) infection in vitro by anticarbohydrate monoclonal antibodies: peripheral glycosylation of HIV envelope glycoprotein gp120 may be a target for virus neutralization, J. Virol., 64, 2833, 10.1128\u002FJVI.64.6.2833-2840.1990\nHealey, 1990, Novel anti-CD4 monoclonal antibodies separate human immunodeficiency virus infection and fusion of CD4+ cells from virus binding, J. Exp. 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Acta, 1138, 62\nMcKeating, 1989, Structure and function of the HIV envelope, AIDS, 3, S35, 10.1097\u002F00002030-198901001-00005\nMoore, 1992, CPF-DD is an inhibitor of infection by human immunodeficiency virus and other enveloped viruses in vitro, Virology, 188, 537, 10.1016\u002F0042-6822(92)90508-M\nMorikawa, 1991, Reduction in CD4 binding affinity associated with removal of a single glycosylation site in the external glycoprotein of HIV-2, Virology, 180, 853, 10.1016\u002F0042-6822(91)90106-L\nMüller, 1988, The d-mannose-specific lectin from Gerardia savaglia blocks binding of human immunodeficiency virus type I to H9 cells and human lymphocytes in vitro, J. Acq. Immun. Def. Syndr., 1, 453\nOlshevsky, 1990, Identification of individual human immunodeficiency virus type 1gp120 amino acids important for CD4 receptor binding, J. Virol., 64, 5701, 10.1128\u002FJVI.64.12.5701-5707.1990\nPal, 1989, Processing and secretion of envelope glycoproteins of human immunodeficiency virus type 1 in the presence of trimming glucosade inhibitor deoxynojirimycin, Intervirol., 30, 27, 10.1159\u002F000150073\nParish, 1990, A polyanion binding site on the CD4 molecule. Proximity to the HIV-gp120 binding region, J. Immunol., 145, 1188, 10.4049\u002Fjimmunol.145.4.1188\nRobinson, 1990, Identification of conserved and variant epitopes of human immunodeficiency virus type 1 (HIV-1) gp120 by human monoclonal antibodies produced by EBV-transformed cell lines, AIDS Res. Hum. Retroviruses, 6, 567, 10.1089\u002Faid.1990.6.567\nRobinson, 1987, Evidence that mannosyl residues are involved in human immunodeficiency virus type 1 (HIV-1) pathogenesis, AIDS Res. Hum. Retroviruses, 3, 265, 10.1089\u002Faid.1987.3.265\nSchnittman, 1988, Characterization of GP120 binding to CD4 and an assay that measures ability of sera to inhibit this binding, J. Immunol., 141, 4181, 10.4049\u002Fjimmunol.141.12.4181\nSchols, 1989, Specific interaction of aurintricarboxylic acid with the human immunodeficiency virus\u002FCD4 cell receptor, 86, 3322\nSchols, 1990, Dextran sulfate and other polyanionic anti-HIV compounds specifically interact with the viral gp120 glycoprotein expressed by T-cells persistently infected with HIV-1, Virology, 175, 556, 10.1016\u002F0042-6822(90)90440-3\nSun, 1989, Generation and characterization of monoclonal antibodies to the putative CD4-binding domain of human immunodeficiency virus type 1 gp120, J. Virol., 63, 3579, 10.1128\u002FJVI.63.9.3579-3585.1989\nWeiler, 1990, Sulphoevernan, a polyanionic polysaccharide, and the Narcissus lectin potently inhibit human immunodeficiency virus infection by binding to viral envelope protein, J. 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Immunol., 174, 1664, 10.4049\u002Fjimmunol.174.3.1664\nBodily, 1999, The inhibitory effects of bryostatin 1 administration on the growth of rabbit papillomas, Cancer Lett., 136, 67, 10.1016\u002FS0304-3835(98)00310-3\nBrandsma, 2005, The cottontail rabbit papillomavirus model of high-risk HPV-induced disease, Methods Mol. Med., 119, 217\nBrandsma, 1991, Use of a rapid, efficient inoculation method to induce papillomas by cottontail rabbit papillomavirus DNA shows that the E7 gene is required, Proc. Natl. Acad. Sci. U.S.A., 88, 4816, 10.1073\u002Fpnas.88.11.4816\nBrandsma, 1992, The putative E5 open reading frame of cottontail rabbit papillomavirus is dispensable for papilloma formation in domestic rabbits, J. Virol., 66, 6204, 10.1128\u002FJVI.66.10.6204-6207.1992\nBreitburd, 1997, The rabbit viral skin papillomas and carcinomas: a model for the immunogenetics of HPV-associated carcinogenesis, Clin. 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Methods, 148, 34, 10.1016\u002Fj.jviromet.2007.10.005\nCladel, 2008, CRPV genomes with synonymous codon optimizations in the CRPV E7 gene show phenotypic differences in growth and altered immunity upon E7 vaccination, PLoS ONE, 3, e2947, 10.1371\u002Fjournal.pone.0002947\nDuan, 2000, Topical effects of cidofovir on cutaneous rabbit warts: treatment regimen and inoculum dependence, Antiviral Res., 46, 135, 10.1016\u002FS0166-3542(00)00080-2\nHan, 1999, Protection of rabbits from viral challenge by gene gun-based intracutaneous vaccination with a combination of cottontail rabbit papillomavirus E1, E2, E6, and E7 genes, J. Virol., 73, 7039, 10.1128\u002FJVI.73.8.7039-7043.1999\nHan, 2000, DNA vaccination prevents and\u002For delays carcinoma development of papillomavirus-induced skin papillomas on rabbits, J. Virol., 74, 9712, 10.1128\u002FJVI.74.20.9712-9716.2000\nHan, 2000, Immunization of rabbits with cottontail rabbit papillomavirus E1 and E2 genes: protective immunity induced by gene gun-mediated intracutaneous delivery but not by intramuscular injection, Vaccine, 18, 2937, 10.1016\u002FS0264-410X(00)00110-9\nHu, 2002, Amino acid residues in the carboxy-terminal region of cottontail rabbit papillomavirus E6 influence spontaneous regression of cutaneous papillomas, J. Virol., 76, 11801, 10.1128\u002FJVI.76.23.11801-11808.2002\nHu, 2002, Intracutaneous DNA vaccination with the E8 gene of cottontail rabbit papillomavirus induces protective immunity against virus challenge in rabbits, J. Virol., 76, 6453, 10.1128\u002FJVI.76.13.6453-6459.2002\nHu, 2006, Protective cell-mediated immunity by DNA vaccination against papillomavirus L1 capsid protein in the cottontail rabbit papillomavirus model, Viral Immunol., 19, 492, 10.1089\u002Fvim.2006.19.492\nHu, 2007, Impact of genetic changes to the CRPV genome and their application to the study of pathogenesis in vivo, Virology, 384, 10.1016\u002Fj.virol.2006.08.045\nHu, 2008, Protective immunity with an E1 multivalent epitope DNA vaccine against cottontail rabbit papillomavirus (CRPV) infection in an HLA-A2.1 transgenic rabbit model, Vaccine, 26, 809, 10.1016\u002Fj.vaccine.2007.11.081\nJeckel, 2002, A transactivator function of cottontail rabbit papillomavirus e2 is essential for tumor induction in rabbits, J. Virol., 76, 11209, 10.1128\u002FJVI.76.22.11209-11215.2002\nKreider, 1995, High efficiency induction of papillomas in vivo using recombinant cottontail rabbit papillomavirus DNA, J. Virol. 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