New generation humanized mice for virus research: comparative aspects and future prospects.
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[1] R. Akkina,et al. Humanized Rag2(-/-)gammac(-/-) (RAG-hu) mice can sustain long-term chronic HIV-1 infection lasting more than a year. , 2010, Virology.
[2] R. Speck,et al. Modeling HIV infection and therapies in humanized mice. , 2012, Swiss medical weekly.
[3] B. Palmer,et al. Humanized Rag1−/−γc−/− Mice Support Multilineage Hematopoiesis and Are Susceptible to HIV-1 Infection via Systemic and Vaginal Routes , 2011, PloS one.
[4] Anitha Rao,et al. RNA-Based Gene Therapy for HIV with Lentiviral Vector–Modified CD34+ Cells in Patients Undergoing Transplantation for AIDS-Related Lymphoma , 2010, Science Translational Medicine.
[5] T. Roskams,et al. Morphological and biochemical characterization of a human liver in a uPA‐SCID mouse chimera , 2005, Hepatology.
[6] C. Aspord,et al. Induction of Antiviral Cytotoxic T Cells by Plasmacytoid Dendritic Cells for Adoptive Immunotherapy of Posttransplant Diseases , 2011, American journal of transplantation : official journal of the American Society of Transplantation and the American Society of Transplant Surgeons.
[7] M. Swanson,et al. Human Breast Milk and Antiretrovirals Dramatically Reduce Oral HIV-1 Transmission in BLT Humanized Mice , 2012, PLoS pathogens.
[8] T. Nakahata,et al. NOD/Shi-scid IL2rgamma(null) (NOG) mice more appropriate for humanized mouse models. , 2008, Current topics in microbiology and immunology.
[9] Liguo Zhang,et al. FoxP3+CD4+ regulatory T cells play an important role in acute HIV-1 infection in humanized Rag2-/-gammaC-/- mice in vivo. , 2008, Blood.
[10] J. Garcia,et al. Experimental Infection of NOD/SCID Mice Reconstituted with Human CD34+ Cells with Epstein-Barr Virus , 2004, Journal of Virology.
[11] C. Neff,et al. Oral Pre-Exposure Prophylaxis by Anti-Retrovirals Raltegravir and Maraviroc Protects against HIV-1 Vaginal Transmission in a Humanized Mouse Model , 2010, PloS one.
[12] M. Marsden,et al. HIV Latency in the Humanized BLT Mouse , 2011, Journal of Virology.
[13] R. Pollard,et al. Generation of an HIV-1-Resistant Immune System with CD34+ Hematopoietic Stem Cells Transduced with a Triple-Combination Anti-HIV Lentiviral Vector , 2012, Journal of Virology.
[14] R. Flavell,et al. Transgenic expression of human signal regulatory protein alpha in Rag2−/−γc−/− mice improves engraftment of human hematopoietic cells in humanized mice , 2011, Proceedings of the National Academy of Sciences.
[15] E. Harris,et al. Animal Models of Dengue Virus Infection , 2012, Viruses.
[16] E. Thiel,et al. Evidence for the cure of HIV infection by CCR5Δ32/Δ32 stem cell transplantation. , 2011, Blood.
[17] C. Stoddart,et al. Alpha Interferon and HIV Infection Cause Activation of Human T Cells in NSG-BLT Mice , 2012, Journal of Virology.
[18] R. Flavell,et al. Improving human hemato-lymphoid-system mice by cytokine knock-in gene replacement. , 2011, Trends in immunology.
[19] E. Connick,et al. Mucosal transmission of R5 and X4 tropic HIV-1 via vaginal and rectal routes in humanized Rag2-/- gammac -/- (RAG-hu) mice. , 2008, Virology.
[20] J. Rossi,et al. Current status of gene therapy strategies to treat HIV/AIDS. , 2005, Molecular therapy : the journal of the American Society of Gene Therapy.
[21] H. Gendelman,et al. Human Immunodeficiency Virus Type 1 Pathobiology Studied in Humanized BALB/c-Rag2−/−γc−/− Mice , 2006, Journal of Virology.
[22] Ling Peng,et al. Systemic administration of combinatorial dsiRNAs via nanoparticles efficiently suppresses HIV-1 infection in humanized mice. , 2011, Molecular therapy : the journal of the American Society of Gene Therapy.
[23] A. Wege,et al. Leishmania major Infection in Humanized Mice Induces Systemic Infection and Provokes a Nonprotective Human Immune Response , 2012, PLoS neglected tropical diseases.
[24] C. Rice,et al. Priming of protective T cell responses against virus-induced tumors in mice with human immune system components , 2009, The Journal of experimental medicine.
[25] Rapid Evolution of HIV-1 to Functional CD8+ T Cell Responses in Humanized BLT Mice , 2012, Science Translational Medicine.
[26] J. Rossi,et al. Functional In Vivo Delivery of Multiplexed Anti-HIV-1 siRNAs via a Chemically Synthesized Aptamer With a Sticky Bridge , 2012, Molecular therapy : the journal of the American Society of Gene Therapy.
[27] E. Anderson. Hudson et al. , 1977 .
[28] John J Rossi,et al. Genetic therapies against HIV , 2007, Nature Biotechnology.
[29] P. Joshi,et al. Superior human leukocyte reconstitution and susceptibility to vaginal HIV transmission in humanized NOD-scid IL-2Rγ(-/-) (NSG) BLT mice. , 2011, Virology.
[30] A. Ashkar,et al. Humanized mice are susceptible to Salmonella typhi infection , 2011, Cellular and Molecular Immunology.
[31] L. Hui,et al. Liver xeno-repopulation with human hepatocytes in Fah-/-Rag2-/- mice after pharmacological immunosuppression. , 2010, The American journal of pathology.
[32] E. Appella,et al. One Percent Tenofovir Applied Topically to Humanized BLT Mice and Used According to the CAPRISA 004 Experimental Design Demonstrates Partial Protection from Vaginal HIV Infection, Validating the BLT Model for Evaluation of New Microbicide Candidates , 2011, Journal of Virology.
[33] D. Peer,et al. RNAi-mediated CCR5 silencing by LFA-1-targeted nanoparticles prevents HIV infection in BLT mice. , 2010, Molecular therapy : the journal of the American Society of Gene Therapy.
[34] Satoshi Tanaka,et al. Generation of functional human T-cell subsets with HLA-restricted immune responses in HLA class I expressing NOD/SCID/IL2rγnull humanized mice , 2010, Proceedings of the National Academy of Sciences.
[35] P. T. N. Sarkis,et al. Human B-cell ontogeny in humanized NOD/SCID γcnull mice generates a diverse yet auto/poly- and HIV-1 reactive antibody repertoire , 2012, Genes and Immunity.
[36] J. Abbott,et al. A Kaposi's Sarcoma-Associated Herpesvirus-Encoded Ortholog of MicroRNA miR-155 Induces Human Splenic B-Cell Expansion in NOD/LtSz-scid IL2Rγnull Mice , 2011, Journal of Virology.
[37] H. Gendelman,et al. Long-acting nanoformulated antiretroviral therapy elicits potent antiretroviral and neuroprotective responses in HIV-1-infected humanized mice , 2012, AIDS.
[38] T. Morio,et al. Hematopoietic stem cell–engrafted NOD/SCID/IL2Rγnull mice develop human lymphoid systems and induce long-lasting HIV-1 infection with specific humoral immune responses , 2007 .
[39] G. Kovalev,et al. Efficient infection, activation, and impairment of pDCs in the BM and peripheral lymphoid organs during early HIV-1 infection in humanized rag2⁻/⁻γ C⁻/⁻ mice in vivo. , 2011, Blood.
[40] Mamoru Ito,et al. The analysis of the functions of human B and T cells in humanized NOD/shi-scid/gammac(null) (NOG) mice (hu-HSC NOG mice). , 2009, International immunology.
[41] R. Swanstrom,et al. Evolution of the HIV-1 env Gene in the Rag2−/− γC−/− Humanized Mouse Model , 2009, Journal of Virology.
[42] D. Greiner,et al. Enhanced humoral and HLA‐A2‐restricted dengue virus‐specific T‐cell responses in humanized BLT NSG mice , 2012, Immunology.
[43] M. Zupancic,et al. Intrarectal transmission, systemic infection, and CD4+ T cell depletion in humanized mice infected with HIV-1 , 2007, The Journal of experimental medicine.
[44] J. Scoazec,et al. HTLV-1 Propels Thymic Human T Cell Development in “Human Immune System” Rag2-/- gamma c-/- Mice , 2011, PLoS pathogens.
[45] M. Sykes,et al. Antigen-specific human T-cell responses and T cell-dependent production of human antibodies in a humanized mouse model. , 2008, Blood.
[46] Pingnan Sun,et al. Humanized murine model for HBV and HCV using human induced pluripotent stem cells , 2012, Archives of pharmacal research.
[47] A. Haase,et al. Humanized mice mount specific adaptive and innate immune responses to EBV and TSST-1 , 2006, Nature Medicine.
[48] J. Garcia,et al. Mucosal HIV-1 transmission and prevention strategies in BLT humanized mice. , 2012, Trends in microbiology.
[49] Dale L. Greiner,et al. T Cell-Specific siRNA Delivery Suppresses HIV-1 Infection in Humanized Mice , 2008, Cell.
[50] R. Rico-Hesse,et al. Dengue Virus Tropism in Humanized Mice Recapitulates Human Dengue Fever , 2011, PloS one.
[51] M. Y. Lei,et al. Dimeric 2G12 as a Potent Protection against HIV-1 , 2010, PLoS pathogens.
[52] J. McCune,et al. Development and applications of the SCID-hu mouse model. , 1996, Seminars in immunology.
[53] D. Mosier,et al. Human xenograft models for virus infection. , 2000, Virology.
[54] T. Richie,et al. Expression of HLA Class II Molecules in Humanized NOD.Rag1KO.IL2RgcKO Mice Is Critical for Development and Function of Human T and B Cells , 2011, PloS one.
[55] John P. Moore,et al. Animal models for microbicide studies. , 2012, Current HIV research.
[56] J. Eron,et al. Administration of vorinostat disrupts HIV-1 latency in patients on antiretroviral therapy , 2012, Nature.
[57] K. Akashi,et al. Development of functional human blood and immune systems in NOD/SCID/IL2 receptor γ chainnull mice , 2005 .
[58] E. Schlaepfer,et al. Humanized Mice Recapitulate Key Features of HIV-1 Infection: A Novel Concept Using Long-Acting Anti-Retroviral Drugs for Treating HIV-1 , 2012, PloS one.
[59] H. Gendelman,et al. Immunopathology and Infectious Diseases Links between Progressive HIV-1 Infection of Humanized Mice and Viral Neuropathogenesis , 2010 .
[60] R. Steinbrook. Preexposure prophylaxis for HIV infection. , 2012, JAMA.
[61] K. Kehn-Hall,et al. Effect of transcription peptide inhibitors on HIV-1 replication. , 2008, Virology.
[62] J. Rossi,et al. An Aptamer-siRNA Chimera Suppresses HIV-1 Viral Loads and Protects from Helper CD4+ T Cell Decline in Humanized Mice , 2011, Science Translational Medicine.
[63] W. Harrington,et al. Adult T-cell leukemia/lymphoma development in HTLV-1-infected humanized SCID mice. , 2009, Blood.
[64] Hans-Peter Kiem,et al. Hematopoietic-stem-cell-based gene therapy for HIV disease. , 2012, Cell stem cell.
[65] Todd M. Allen,et al. Inhibition of HIV transmission in human cervicovaginal explants and humanized mice using CD4 aptamer-siRNA chimeras. , 2011, The Journal of clinical investigation.
[66] S. Porwollik,et al. Humanized nonobese diabetic-scid IL2rγnull mice are susceptible to lethal Salmonella Typhi infection , 2010, Proceedings of the National Academy of Sciences.
[67] M. Swanson,et al. Generation of HIV Latency in Humanized BLT Mice , 2011, Journal of Virology.
[68] L. Su,et al. HIV-1 immunopathogenesis in humanized mouse models , 2012, Cellular and Molecular Immunology.
[69] G. Kovalev,et al. HIV-1 infection and pathogenesis in a novel humanized mouse model. , 2007, Blood.
[70] Frederic D Bushman,et al. HIV sequence variation associated with env antisense adoptive T-cell therapy in the hNSG mouse model. , 2010, Molecular therapy : the journal of the American Society of Gene Therapy.
[71] Mamoru Ito,et al. Vpu Augments the Initial Burst Phase of HIV-1 Propagation and Downregulates BST2 and CD4 in Humanized Mice , 2012, Journal of Virology.
[72] J. Garcia,et al. Incidence of active TB disease among PLHIV/AIDS who took isoniazid preventive therapy in public health facilities of Addis Ababa, Ethiopia , 2013 .
[73] R. Rico-Hesse,et al. Mosquito Bite Delivery of Dengue Virus Enhances Immunogenicity and Pathogenesis in Humanized Mice , 2012, Journal of Virology.
[74] D. Kedes,et al. KSHV targets multiple leukocyte lineages during long-term productive infection in NOD/SCID mice. , 2006, The Journal of clinical investigation.
[75] Cameron P. Simmons,et al. Current concepts: Dengue , 2012 .
[76] J. Garcia,et al. Humanized mouse models of HIV infection. , 2011, AIDS reviews.
[77] C. Neff,et al. Topical gel formulation of broadly neutralizing anti-HIV-1 monoclonal antibody VRC01 confers protection against HIV-1 vaginal challenge in a humanized mouse model. , 2012, Virology.
[78] R. Tyagi,et al. Further Improvements of the P. falciparum Humanized Mouse Model , 2011, PloS one.
[79] D. Spencer,et al. Granulocyte-colony stimulating factor reactivates human cytomegalovirus in a latently infected humanized mouse model. , 2010, Cell host & microbe.
[80] C. Münz,et al. Mice with human immune system components as in vivo models for infections with human pathogens , 2011, Immunology and cell biology.
[81] Robert E. White,et al. EBNA3B-deficient EBV promotes B cell lymphomagenesis in humanized mice and is found in human tumors. , 2012, The Journal of clinical investigation.
[82] S. A. Abdool Karim,et al. Clinical decisions. Preexposure prophylaxis for HIV prevention. , 2012, The New England journal of medicine.
[83] H. Gendelman,et al. Can Humanized Mice Reflect the Complex Pathobiology of HIV-Associated Neurocognitive Disorders? , 2012, Journal of Neuroimmune Pharmacology.
[84] K. Hatakeyama,et al. Multiple Integrations of Human T-Lymphotropic Virus Type 1 Proviruses in the Engrafted Cells from the Asymptomatic Carriers in NOD/SCID/γcnull Mice , 2010, Intervirology.
[85] Vanessa Taupin,et al. Human hematopoietic stem/progenitor cells modified by zinc-finger nucleases targeted to CCR5 control HIV-1 in vivo , 2010, Nature Biotechnology.
[86] B. Blom,et al. Use of a Novel Chimeric Mouse Model with a Functionally Active Human Immune System To Study Human Immunodeficiency Virus Type 1 Infection , 2007, Clinical and Vaccine Immunology.
[87] B. Berkhout,et al. Evaluation of safety and efficacy of RNAi against HIV-1 in the human immune system (Rag-2-/-γc-/-) mouse model , 2009, Gene Therapy.
[88] R. Swanstrom,et al. Suppression of Human Immunodeficiency Virus Type 1 (HIV-1) Viremia with Reverse Transcriptase and Integrase Inhibitors, CD4+ T-Cell Recovery, and Viral Rebound upon Interruption of Therapy in a New Model for HIV Treatment in the Humanized Rag2−/−γc−/− Mouse , 2009, Journal of Virology.
[89] A. Murphy,et al. Human thrombopoietin knockin mice efficiently support human hematopoiesis in vivo , 2010, Proceedings of the National Academy of Sciences.
[90] M. Heikenwalder,et al. RAG2−/−γc−/− Mice Transplanted with CD34+ Cells from Human Cord Blood Show Low Levels of Intestinal Engraftment and Are Resistant to Rectal Transmission of Human Immunodeficiency Virus , 2008, Journal of Virology.
[91] A. Ashkar,et al. Mucosal Innate and Adaptive Immune Responses against Herpes Simplex Virus Type 2 in a Humanized Mouse Model , 2009, Journal of Virology.
[92] Hideki Ohdan,et al. Role for CD47-SIRPα signaling in xenograft rejection by macrophages , 2007, Proceedings of the National Academy of Sciences.
[93] K. Sango,et al. Highly active antiretroviral therapy potently suppresses HIV infection in humanized Rag2-/-gammac-/- mice. , 2010, AIDS research and human retroviruses.
[94] O. Yang,et al. In Vivo Suppression of HIV by Antigen Specific T Cells Derived from Engineered Hematopoietic Stem Cells , 2012, PLoS pathogens.
[95] B. Palmer,et al. HIV-1 infection and CD4 T cell depletion in the humanized Rag2-/-γc-/- (RAG-hu) mouse model , 2006, Retrovirology.
[96] B. Berges,et al. The utility of the new generation of humanized mice to study HIV-1 infection: transmission, prevention, pathogenesis, and treatment , 2011, Retrovirology.
[97] Mamoru Ito,et al. Complete reconstitution of human lymphocytes from cord blood CD34+ cells using the NOD/SCID/gammacnull mice model. , 2003, Blood.
[98] G. Leroux-Roels,et al. The human liver-uPA-SCID mouse: a model for the evaluation of antiviral compounds against HBV and HCV. , 2008, Antiviral research.
[99] S. Réhman,et al. Hepatitis C Virus Envelope Glycoprotein Fitness Defines Virus Population Composition following Transmission to a New Host , 2012, Journal of Virology.
[100] M. Sugiyama,et al. Cross-species transmission of gibbon and orangutan hepatitis B virus to uPA/SCID mice with human hepatocytes. , 2011, Virus research.
[101] B. Palmer,et al. Safety and Efficacy of a Lentiviral Vector Containing Three Anti-HIV Genes-CCR5 Ribozyme, Tat-rev siRNA, and TAR Decoy-in SCID-hu Mouse-Derived T Cells. , 2007, Molecular therapy : the journal of the American Society of Gene Therapy.
[102] H. Garg,et al. Single amino acid change in gp41 region of HIV-1 alters bystander apoptosis and CD4 decline in humanized mice , 2011, Virology Journal.
[103] D. Margolis,et al. Latent HIV-1 Infection of Resting CD4+ T Cells in the Humanized Rag2−/− γc −/− Mouse , 2011, Journal of Virology.
[104] K. Kehn-Hall,et al. The utilization of humanized mouse models for the study of human retroviral infections , 2009, Retrovirology.
[105] A. Freitas,et al. Humanized mice: current states and perspectives. , 2012, Immunology letters.
[106] F. Uckun,et al. Limitations of the Human‐PBL‐SCID Mouse Model for Vaginal Transmission of HIV‐1 , 2007, American journal of reproductive immunology.
[107] M. Ott,et al. Generation of Human Antigen-Specific Monoclonal IgM Antibodies Using Vaccinated “Human Immune System” Mice , 2010, PloS one.
[108] M. Manns,et al. Humanized mice for modeling human infectious disease: challenges, progress, and outlook. , 2009, Cell host & microbe.
[109] M. Takiguchi,et al. Effective Elicitation of Human Effector CD8+ T Cells in HLA-B*51:01 Transgenic Humanized Mice after Infection with HIV-1 , 2012, PloS one.
[110] A. Haase,et al. Antiretroviral Pre-exposure Prophylaxis Prevents Vaginal Transmission of HIV-1 in Humanized BLT Mice , 2008, PLoS medicine.
[111] Andrew D. Luster,et al. HIV-infected T cells are migratory vehicles for viral dissemination , 2012, Nature.
[112] G. Stiegler,et al. Inhibition of In Vivo HIV Infection in Humanized Mice by Gene Therapy of Human Hematopoietic Stem Cells with a Lentiviral Vector Encoding a Broadly Neutralizing Anti-HIV Antibody , 2010, Journal of Virology.
[113] R. Schwendener,et al. Inadequate Clearance of Translocated Bacterial Products in HIV-Infected Humanized Mice , 2010, PLoS pathogens.
[114] Markus G. Manz,et al. Development of a Human Adaptive Immune System in Cord Blood Cell-Transplanted Mice , 2004, Science.
[115] D. Greiner,et al. Humanized mice as a preclinical tool for infectious disease and biomedical research , 2011, Annals of the New York Academy of Sciences.
[116] Mamoru Ito,et al. Functional CD5+ B cells develop predominantly in the spleen of NOD/SCID/gammac(null) (NOG) mice transplanted either with human umbilical cord blood, bone marrow, or mobilized peripheral blood CD34+ cells. , 2003, Experimental hematology.
[117] H. Gendelman,et al. CD8+ Cell Depletion Accelerates HIV-1 Immunopathology in Humanized Mice , 2010, The Journal of Immunology.
[118] F. Chisari,et al. Human liver chimeric mice provide a model for hepatitis B and C virus infection and treatment. , 2010, The Journal of clinical investigation.
[119] E. Fuchs,et al. In vivo proliferation of hepadnavirus‐infected hepatocytes induces loss of covalently closed circular DNA in mice , 2010, Hepatology.
[120] J. Belghiti,et al. Antiviral Activity of Bay 41-4109 on Hepatitis B Virus in Humanized Alb-uPA/SCID Mice , 2011, PloS one.
[121] J. D. Di Santo,et al. Functional CD47/signal regulatory protein alpha (SIRPα) interaction is required for optimal human T- and natural killer- (NK) cell homeostasis in vivo , 2011, Proceedings of the National Academy of Sciences.
[122] David Baltimore,et al. Antibody-based Protection Against HIV Infection by Vectored ImmunoProphylaxis , 2011, Nature.
[123] B. Palmer,et al. In Vivo Blockade of the PD-1 Receptor Suppresses HIV-1 Viral Loads and Improves CD4+ T Cell Levels in Humanized Mice , 2013, The Journal of Immunology.
[124] R. Shattock,et al. Microbicides: topical prevention against HIV. , 2012, Cold Spring Harbor perspectives in medicine.
[125] Mamoru Ito,et al. Remarkable Lethal G-to-A Mutations in vif-Proficient HIV-1 Provirus by Individual APOBEC3 Proteins in Humanized Mice , 2010, Journal of Virology.
[126] J. Banchereau,et al. Broad influenza-specific CD8+ T-cell responses in humanized mice vaccinated with influenza virus vaccines. , 2008, Blood.
[127] C. Neff,et al. A Topical Microbicide Gel Formulation of CCR5 Antagonist Maraviroc Prevents HIV-1 Vaginal Transmission in Humanized RAG-hu Mice , 2011, PloS one.
[128] D. Margolis,et al. IL-2 receptor γ-chain molecule is critical for intestinal T-cell reconstitution in humanized mice , 2012, Mucosal Immunology.
[129] K. Hatakeyama,et al. Engraftment of peripheral blood mononuclear cells from human T‐lymphotropic virus Type 1 carriers in NOD/SCID/γcnull (NOG) mice , 2007, International journal of cancer.
[130] B. Torbett,et al. Zinc-finger nuclease editing of human cxcr4 promotes HIV-1 CD4(+) T cell resistance and enrichment. , 2012, Molecular therapy : the journal of the American Society of Gene Therapy.
[131] W. Burlingham,et al. Th1 and Th17 immunocompetence in humanized NOD/SCID/IL2rgammanull mice. , 2010, Human immunology.
[132] Shumei Wang,et al. Reconstitution of a functional human immune system in immunodeficient mice through combined human fetal thymus/liver and CD34+ cell transplantation. , 2006, Blood.
[133] Andrew D. Luster,et al. Induction of Robust Cellular and Humoral Virus-Specific Adaptive Immune Responses in Human Immunodeficiency Virus-Infected Humanized BLT Mice , 2009, Journal of Virology.
[134] R. Rico-Hesse,et al. Dengue Fever in Humanized NOD/SCID Mice , 2005, Journal of Virology.
[135] T. Berg,et al. Innate immune ‘self’ recognition: a role for CD47–SIRPα interactions in hematopoietic stem cell transplantation , 2008 .
[136] S. Devi,et al. Dengue virus infection and immune response in humanized RAG2−/−γc−/− (RAG-hu) mice , 2007 .
[137] Modeling human lymphoid precursor cell gene therapy in the SCID-hu mouse. , 1994 .
[138] D. An,et al. Stem cell-based anti-HIV gene therapy. , 2011, Virology.
[139] F. Kashanchi,et al. Liver X receptor agonist inhibits HIV-1 replication and prevents HIV-induced reduction of plasma HDL in humanized mouse model of HIV infection. , 2012, Biochemical and biophysical research communications.
[140] C. Rice,et al. A humanized mouse model to study hepatitis C virus infection, immune response, and liver disease. , 2011, Gastroenterology.
[141] Dale L. Greiner,et al. Humanized mice in translational biomedical research , 2007, Nature Reviews Immunology.
[142] J. Peiris,et al. The aminobisphosphonate pamidronate controls influenza pathogenesis by expanding a γδ T cell population in humanized mice , 2011, The Journal of experimental medicine.
[143] Mamoru Ito,et al. Selective infection of CD4+ effector memory T lymphocytes leads to preferential depletion of memory T lymphocytes in R5 HIV-1-infected humanized NOD/SCID/IL-2Rgammanull mice. , 2009, Virology.
[144] F. Bushman,et al. Engineering HIV-Resistant Human CD4+ T Cells with CXCR4-Specific Zinc-Finger Nucleases , 2011, PLoS pathogens.
[145] M. Wainberg,et al. Systemic Administration of Antiretrovirals Prior to Exposure Prevents Rectal and Intravenous HIV-1 Transmission in Humanized BLT Mice , 2010, PloS one.
[146] L. de Leval,et al. An Improved Protocol for Efficient Engraftment in NOD/LTSZ-SCIDIL-2RγNULL Mice Allows HIV Replication and Development of Anti-HIV Immune Responses , 2012, PloS one.
[147] C. Rice,et al. Study of hepatitis C virus entry in genetically humanized mice. , 2013, Methods.
[148] Mamoru Ito,et al. Dynamics of memory and naïve CD8+ T lymphocytes in humanized NOD/SCID/IL-2Rgammanull mice infected with CCR5-tropic HIV-1. , 2010, Vaccine.
[149] J. Zack,et al. Murine models for HIV disease. , 1999, AIDS.
[150] A. Epstein,et al. Loss of Neuronal Integrity during Progressive HIV-1 Infection of Humanized Mice , 2011, The Journal of Neuroscience.
[151] W. Heneine,et al. HIV prevention by oral preexposure prophylaxis. , 2012, Cold Spring Harbor perspectives in medicine.
[152] O. Yang,et al. A highly efficient short hairpin RNA potently down-regulates CCR5 expression in systemic lymphoid organs in the hu-BLT mouse model. , 2010, Blood.
[153] J. Cohen,et al. Epstein-Barr virus infection. , 2000, The New England journal of medicine.
[154] L. Young,et al. Epstein–Barr virus: 40 years on , 2004, Nature Reviews Cancer.
[155] M. Marsden,et al. Establishment and maintenance of HIV latency: model systems and opportunities for intervention. , 2010, Future virology.
[156] Mamoru Ito,et al. T cell-mediated control of Epstein-Barr virus infection in humanized mice. , 2009, The Journal of infectious diseases.
[157] P. T. N. Sarkis,et al. Humoral immune responses in humanized BLT mice immunized with West Nile virus and HIV‐1 envelope proteins are largely mediated via human CD5+ B cells , 2011, Immunology.
[158] Markus G. Manz,et al. Disseminated and sustained HIV infection in CD34+ cord blood cell-transplanted Rag2−/−γc−/− mice , 2006, Proceedings of the National Academy of Sciences.
[159] G. Silvestri,et al. HIV, mucosal tissues, and T helper 17 cells: where we come from, where we are, and where we go from here. , 2010, Current opinion in HIV and AIDS.
[160] J. Dick,et al. Comparison of human cord blood engraftment between immunocompromised mouse strains. , 2010, Blood.
[161] N. Mori,et al. An HIV protease inhibitor, ritonavir targets the nuclear factor‐kappaB and inhibits the tumor growth and infiltration of EBV‐positive lymphoblastoid B cells , 2009, International journal of cancer.