Biomodulina T partially restores immunosenescent CD4 and CD8 T cell compartments in the elderly
暂无分享,去创建一个
D. Speiser | P. Lorenzo-Luaces | A. Lage | T. Crombet | B. García | Z. Mazorra | D. Saavedra | Silvia A. Fuertes | G. M. Suárez | Amnely González | E. Aznar | Patricia Lorenzo-Luaces
[1] G. Pawelec. Immune parameters associated with mortality in the elderly are context-dependent: lessons from Sweden, Holland and Belgium , 2018, Biogerontology.
[2] A. Larbi,et al. Signal transduction changes in CD4+ and CD8+ T cell subpopulations with aging , 2018, Experimental Gerontology.
[3] A. Cohen,et al. Immunosenescence and Inflamm-Aging As Two Sides of the Same Coin: Friends or Foes? , 2018, Front. Immunol..
[4] D. Nandi,et al. Thymic Atrophy: Experimental Studies and Therapeutic Interventions , 2018, Scandinavian journal of immunology.
[5] N. Chaput,et al. Immunosenescence and immunecheckpoint inhibitors in non-small cell lung cancer patients: Does age really matter? , 2017, Cancer treatment reviews.
[6] E. Felip,et al. Nivolumab Versus Docetaxel in Previously Treated Patients With Advanced Non-Small-Cell Lung Cancer: Two-Year Outcomes From Two Randomized, Open-Label, Phase III Trials (CheckMate 017 and CheckMate 057). , 2017, Journal of clinical oncology : official journal of the American Society of Clinical Oncology.
[7] T. Crombet,et al. CIMAvax-EGF: A New Therapeutic Vaccine for Advanced Non-Small Cell Lung Cancer Patients , 2017, Front. Immunol..
[8] A. Lage,et al. T Cell Subpopulations in Healthy Elderly and Lung Cancer Patients: Insights from Cuban Studies , 2017, Front. Immunol..
[9] B. Blom,et al. CD31, a Valuable Marker to Identify Early and Late Stages of T Cell Differentiation in the Human Thymus , 2017, The Journal of Immunology.
[10] J. Dudakov,et al. Thymus: the next (re)generation , 2016, Immunological reviews.
[11] D. Tran,et al. Recent Thymus Emigrant CD4+ T Cells Predict HIV Disease Progression in Patients With Perinatally Acquired HIV. , 2016, Clinical infectious diseases : an official publication of the Infectious Diseases Society of America.
[12] A. Larbi,et al. The Role of Immunosenescence in the Development of Age-Related Diseases. , 2016, Revista de investigacion clinica; organo del Hospital de Enfermedades de la Nutricion.
[13] J. Milner,et al. Impact of dietary components on NK and Treg cell function for cancer prevention , 2015, Molecular carcinogenesis.
[14] M. Delorenzi,et al. Long-lasting stem cell–like memory CD8+ T cells with a naïve-like profile upon yellow fever vaccination , 2015, Science Translational Medicine.
[15] E. Steinhagen-Thiessen,et al. Impact of age, sex and CMV-infection on peripheral T cell phenotypes: results from the Berlin BASE-II Study , 2015, Biogerontology.
[16] D. Nixon,et al. The CD8+ Memory Stem T Cell (TSCM) Subset Is Associated with Improved Prognosis in Chronic HIV-1 Infection , 2014, Journal of Virology.
[17] G. Pawelec. Immunosenenescence: Role of cytomegalovirus , 2014, Experimental Gerontology.
[18] G. Pawelec. T-cell immunity in the aging human , 2014, Haematologica.
[19] H. Kohrt,et al. Monitoring the immune competence of cancer patients to predict outcome , 2014, Cancer Immunology, Immunotherapy.
[20] A. Larbi,et al. From “truly naïve” to “exhausted senescent” T cells: When markers predict functionality , 2014, Cytometry. Part A : the journal of the International Society for Analytical Cytology.
[21] Y. Shimojima,et al. Regulatory T Cells and the Immune Aging Process: A Mini-Review , 2013, Gerontology.
[22] H. Heppner,et al. Infections in the elderly. , 2013, Critical care clinics.
[23] P. Lang,et al. Reversing T cell immunosenescence: why, who, and how , 2013, AGE.
[24] P. Lorenzo-Luaces,et al. Immunosenescence and gender: a study in healthy Cubans , 2013, Immunity & Ageing.
[25] P. Fink. The biology of recent thymic emigrants. , 2013, Annual review of immunology.
[26] T. Waldmann,et al. Superior T memory stem cell persistence supports long-lived T cell memory. , 2013, The Journal of clinical investigation.
[27] D. Samaras,et al. Aging Adults and Seasonal Influenza: Does the Vitamin D Status (H)Arm the Body? , 2011, Journal of aging research.
[28] M. G. Orihuela,et al. Efecto terapéutico de la biomodulina T homeopática con pacientes portadores de enfermedad pulmonar obstructiva crónica , 2011 .
[29] V. Appay,et al. Altered thymic activity in early life: how does it affect the immune system in young adults? , 2011, Current opinion in immunology.
[30] F. Marincola,et al. A human memory T-cell subset with stem cell-like properties , 2011, Nature Medicine.
[31] S. Henson,et al. Are senescence and exhaustion intertwined or unrelated processes that compromise immunity? , 2011, Nature Reviews Immunology.
[32] Sarah E. Jackson,et al. Cytomegalovirus infection induces the accumulation of short‐lived, multifunctional CD4+ CD45RA+ CD27− T cells: the potential involvement of interleukin‐7 in this process , 2011, Immunology.
[33] G. Pawelec. Immunosenescence and cancer , 2017, Biogerontology.
[34] V. Appay,et al. Phenotype and function of human T lymphocyte subsets: Consensus and issues , 2008, Cytometry. Part A : the journal of the International Society for Analytical Cytology.
[35] O. Majdic,et al. The capacity of the TNF family members 4‐1BBL, OX40L, CD70, GITRL, CD30L and LIGHT to costimulate human T cells , 2008, European journal of immunology.
[36] D. Venzon,et al. Administration of rhIL-7 in humans increases in vivo TCR repertoire diversity by preferential expansion of naive T cell subsets , 2008, The Journal of experimental medicine.
[37] T. Heng,et al. Enhanced Immune System Regeneration in Humans Following Allogeneic or Autologous Hemopoietic Stem Cell Transplantation by Temporary Sex Steroid Blockade , 2008, Clinical Cancer Research.
[38] C. Franceschi,et al. Immunosupportive therapies in aging , 2007, Clinical interventions in aging.
[39] N. Weng,et al. Generation and Growth of CD28nullCD8+ Memory T Cells Mediated by IL-15 and Its Induced Cytokines1 , 2006, The Journal of Immunology.
[40] S. Rosenberg,et al. IL-7 Administration to Humans Leads to Expansion of CD8+ and CD4+ Cells but a Relative Decrease of CD4+ T-Regulatory Cells , 2006, Journal of immunotherapy.
[41] H. Hsu,et al. Impaired apoptosis and immune senescence – cause or effect? , 2005, Immunological reviews.
[42] R. Aspinall,et al. Both age and gender affect thymic output: more recent thymic migrants in females than males as they age , 2001, Clinical and experimental immunology.
[43] E. Leventhal,et al. Aging, immunity, and cancer. , 2000, Cancer control : journal of the Moffitt Cancer Center.
[44] L. C. López,et al. Efecto de la biomodulina T 1000 sobre el timo en niños con infecciones recurrentes , 2000 .
[45] J. Reed,et al. CD4+ T Cell Differentiation and Activation. , 2018, Methods in molecular biology.
[46] P. Lorenzo-Luaces,et al. Biomarkers related to immunosenescence: relationships with therapy and survival in lung cancer patients , 2015, Cancer Immunology, Immunotherapy.
[47] O. Majdic,et al. Phenotype of human T cells expressing CD31, a molecule of the immunoglobulin supergene family. , 1992, Immunology.