T-Lymphocyte Subsets
"T-Lymphocyte Subsets" is a descriptor in the National Library of Medicine's controlled vocabulary thesaurus,
MeSH (Medical Subject Headings). Descriptors are arranged in a hierarchical structure,
which enables searching at various levels of specificity.
A classification of T-lymphocytes, especially into helper/inducer, suppressor/effector, and cytotoxic subsets, based on structurally or functionally different populations of cells.
Descriptor ID |
D016176
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MeSH Number(s) |
A11.118.637.555.567.550.500 A11.118.637.555.567.569.500 A15.145.229.637.555.567.550.500 A15.145.229.637.555.567.569.500 A15.382.490.555.567.550.500 A15.382.490.555.567.569.500
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Concept/Terms |
T-Lymphocyte Subsets- T-Lymphocyte Subsets
- Subset, T-Lymphocyte
- Subsets, T-Lymphocyte
- T Lymphocyte Subsets
- T-Lymphocyte Subset
- T-Cell Subsets
- Subset, T-Cell
- Subsets, T-Cell
- T Cell Subsets
- T-Cell Subset
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Below are MeSH descriptors whose meaning is more general than "T-Lymphocyte Subsets".
Below are MeSH descriptors whose meaning is more specific than "T-Lymphocyte Subsets".
This graph shows the total number of publications written about "T-Lymphocyte Subsets" by people in UAMS Profiles by year, and whether "T-Lymphocyte Subsets" was a major or minor topic of these publications.
To see the data from this visualization as text, click here.
Year | Major Topic | Minor Topic | Total |
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2021 | 0 | 3 | 3 | 2020 | 0 | 2 | 2 | 2018 | 1 | 1 | 2 | 2017 | 2 | 1 | 3 | 2016 | 1 | 0 | 1 | 2015 | 1 | 0 | 1 | 2014 | 1 | 0 | 1 | 2013 | 1 | 1 | 2 | 2011 | 1 | 1 | 2 | 2010 | 0 | 1 | 1 | 2009 | 0 | 3 | 3 | 2008 | 1 | 2 | 3 | 2007 | 1 | 2 | 3 | 2005 | 2 | 0 | 2 | 2004 | 0 | 2 | 2 | 2003 | 0 | 1 | 1 | 2002 | 1 | 0 | 1 | 2001 | 1 | 1 | 2 | 1998 | 1 | 0 | 1 | 1994 | 0 | 1 | 1 | 1993 | 1 | 1 | 2 | 1992 | 1 | 0 | 1 | 1991 | 1 | 0 | 1 |
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Below are the most recent publications written about "T-Lymphocyte Subsets" by people in Profiles over the past ten years.
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Gate D, Tapp E, Leventhal O, Shahid M, Nonninger TJ, Yang AC, Strempfl K, Unger MS, Fehlmann T, Oh H, Channappa D, Henderson VW, Keller A, Aigner L, Galasko DR, Davis MM, Poston KL, Wyss-Coray T. CD4+ T cells contribute to neurodegeneration in Lewy body dementia. Science. 2021 Nov 12; 374(6569):868-874.
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Alhallak I, Wolter KG, Castro Munoz A, Simmen FA, Ward RJ, Petty SA, Li LX, Simmen RCM. Breast adipose regulation of premenopausal breast epithelial phenotype involves interleukin 10. J Mol Endocrinol. 2021 09 09; 67(4):173-188.
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Hajiran A, Chakiryan N, Aydin AM, Zemp L, Nguyen J, Laborde JM, Chahoud J, Spiess PE, Zaman S, Falasiri S, Fournier M, Teer JK, Dhillon J, McCarthy S, Moran-Segura C, Katende EN, Sexton WJ, Koomen JM, Mulé J, Kim Y, Manley B. Reconnaissance of tumor immune microenvironment spatial heterogeneity in metastatic renal cell carcinoma and correlation with immunotherapy response. Clin Exp Immunol. 2021 04; 204(1):96-106.
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Zhou X, Rasche L, Kortüm KM, Danhof S, Hudecek M, Einsele H. Toxicities of Chimeric Antigen Receptor T Cell Therapy in Multiple Myeloma: An Overview of Experience From Clinical Trials, Pathophysiology, and Management Strategies. Front Immunol. 2020; 11:620312.
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Stremenova Spegarova J, Lawless D, Mohamad SMB, Engelhardt KR, Doody G, Shrimpton J, Rensing-Ehl A, Ehl S, Rieux-Laucat F, Cargo C, Griffin H, Mikulasova A, Acres M, Morgan NV, Poulter JA, Sheridan EG, Chetcuti P, O'Riordan S, Anwar R, Carter CR, Przyborski S, Windebank K, Cant AJ, Lako M, Bacon CM, Savic S, Hambleton S. Germline TET2 loss of function causes childhood immunodeficiency and lymphoma. Blood. 2020 08 27; 136(9):1055-1066.
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Bakshi RK, Gupta K, Jordan SJ, Chi X, Lensing SY, Press CG, Geisler WM. An Adaptive Chlamydia trachomatis-Specific IFN-?-Producing CD4+ T Cell Response Is Associated With Protection Against Chlamydia Reinfection in Women. Front Immunol. 2018; 9:1981.
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Chiang D, Chen X, Jones SM, Wood RA, Sicherer SH, Burks AW, Leung DYM, Agashe C, Grishin A, Dawson P, Davidson WF, Newman L, Sebra R, Merad M, Sampson HA, Losic B, Berin MC. Single-cell profiling of peanut-responsive T cells in patients with peanut allergy reveals heterogeneous effector TH2 subsets. J Allergy Clin Immunol. 2018 06; 141(6):2107-2120.
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Ogendi BMO, Bakshi RK, Gupta K, Kapil R, Brown LT, Jordan SJ, Sabbaj S, Press CG, Lee JY, Geisler WM. T cell phenotypes in women with Chlamydia trachomatis infection and influence of treatment on phenotype distributions. Microbes Infect. 2018 03; 20(3):176-184.
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Ibitokou SA, Dillon BE, Sinha M, Szczesny B, Delgadillo A, Reda Abdelrahman D, Szabo C, Abu-Elheiga L, Porter C, Tuvdendorj D, Stephens R. Early Inhibition of Fatty Acid Synthesis Reduces Generation of Memory Precursor Effector T Cells in Chronic Infection. J Immunol. 2018 01 15; 200(2):643-656.
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Ogendi BMO, Bakshi RK, Sabbaj S, Brown L, Lee JY, Kapil R, Geisler WM. Distinct peripheral vs mucosal T-cell phenotypes in chlamydia-infected women. Am J Reprod Immunol. 2017 Dec; 78(6).
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Qualai J, Li LX, Cantero J, Tarrats A, Fernández MA, Sumoy L, Rodolosse A, McSorley SJ, Genescà M. Expression of CD11c Is Associated with Unconventional Activated T Cell Subsets with High Migratory Potential. PLoS One. 2016; 11(4):e0154253.
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Wikenheiser DJ, Ghosh D, Kennedy B, Stumhofer JS. The Costimulatory Molecule ICOS Regulates Host Th1 and Follicular Th Cell Differentiation in Response to Plasmodium chabaudi chabaudi AS Infection. J Immunol. 2016 Jan 15; 196(2):778-91.
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Gizinski AM, Fox DA. T cell subsets and their role in the pathogenesis of rheumatic disease. Curr Opin Rheumatol. 2014 Mar; 26(2):204-10.
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Schmitt EG, Haribhai D, Jeschke JC, Co DO, Ziegelbauer J, Yan K, Iwakura Y, Mishra MK, Simpson P, Salzman NH, Williams CB. Chronic follicular bronchiolitis requires antigen-specific regulatory T cell control to prevent fatal disease progression. J Immunol. 2013 Dec 01; 191(11):5460-76.
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Choudhary A, Galvin TA, Williams DK, Beren J, Bryant MA, Khan AS. Influence of naturally occurring simian foamy viruses (SFVs) on SIV disease progression in the rhesus macaque (Macaca mulatta) model. Viruses. 2013 Jun 06; 5(6):1414-30.
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