Literature DB >> 20839490

Senescent phenotypes and telomere lengths of peripheral blood T-cells mobilized by acute exercise in humans.

Richard J Simpson1, Cormac Cosgrove, Meng M Chee, Brian K McFarlin, David B Bartlett, Guillaume Spielmann, Daniel P O'Connor, Hanspeter Pircher, Paul G Shiels.   

Abstract

Acute bouts of aerobic exercise are known to mobilize antigen-experienced CD8+ T-cells expressing the cell surface marker of senescence, KLRG1, into the blood. It is not known; however if this is due to a selective mobilization of terminally differentiated T-cells (i.e., KLRG1 +/CD28-/CD57+) or a population of effector memory T-cells (i.e., KLRG1+/CD28+/CD57-) that have not reached terminal differentiation. The aim of this study was to further characterize KLRG1 + T-cells mobilized by acute exercise by assessing the co-expression of KLRG1 with CD28 or CD57 and to determine telomere lengths in the CD4+ and CD8+ T-cell subsets. Nine moderately trained male subjects completed an exhaustive treadmill running protocol at 80%. Blood lymphocytes isolated before, immediately after and 1h after exercise were labelled with antibodies against KLRG1, CD28 or CD57, CD4 or CD8 and CD3 for 4-color flow cytometry analysis. Telomere lengths in CD3+, CD4+ and CD8+ T-cells were determined using Q-PCR. The relative proportion of KLRG1 + cells among the CD8+ T-cells increased by 40% immediately after exercise, returning to baseline 1h later. This was due to a mobilization of KLRG1+/CD28- (61% increase), KLRG1+/CD57+ (56% increase) and to a lesser extent, KLRG1+/CD57- cells (24% increase). Telomeres in CD8+ T-cells displayed an increased relative length immediately after exercise, whereas no change occurred for CD4+ or the overall CD3+ T-cells. In conclusion, the increased frequency of KLRG1 +/CD8+ T-cells in blood after acute exercise is predominantly due to a selective mobilization of terminally differentiated T-cells. The increased relative telomere length in CD8+ T-cells after exercise might indicate that KLRG1+ cells mobilized by exercise are under stress or aberrant signaling-induced senescence (STASIS). We postulate that a frequent mobilization of these cells by acute exercise might eventually allow naïve T-cells to occupy the "vacant" immune space and increase the naïve T-cell repertoire.

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Year:  2010        PMID: 20839490

Source DB:  PubMed          Journal:  Exerc Immunol Rev        ISSN: 1077-5552            Impact factor:   6.308


  25 in total

Review 1.  Telomere Length Maintenance and Cardio-Metabolic Disease Prevention Through Exercise Training.

Authors:  Joshua Denham; Brendan J O'Brien; Fadi J Charchar
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Review 2.  CD8+ CD28- and CD8+ CD57+ T cells and their role in health and disease.

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Journal:  Immunology       Date:  2011-06-29       Impact factor: 7.397

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4.  Nutritional and Physical Activity Interventions to Improve Immunity.

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5.  The impact of 6-month training preparation for an Ironman triathlon on the proportions of naïve, memory and senescent T cells in resting blood.

Authors:  Cormac Cosgrove; Stuart D R Galloway; Craig Neal; Angus M Hunter; Brian K McFarlin; Guilllaume Spielmann; Richard J Simpson
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7.  The CD3-zeta chimeric antigen receptor overcomes TCR Hypo-responsiveness of human terminal late-stage T cells.

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Review 8.  Do telomeres adapt to physiological stress? Exploring the effect of exercise on telomere length and telomere-related proteins.

Authors:  Andrew T Ludlow; Lindsay W Ludlow; Stephen M Roth
Journal:  Biomed Res Int       Date:  2013-12-24       Impact factor: 3.411

9.  Acute exercise leads to regulation of telomere-associated genes and microRNA expression in immune cells.

Authors:  Warrick L Chilton; Francine Z Marques; Jenny West; George Kannourakis; Stuart P Berzins; Brendan J O'Brien; Fadi J Charchar
Journal:  PLoS One       Date:  2014-04-21       Impact factor: 3.240

10.  Post-match recovery profile of leukocyte cell subsets among professional soccer players.

Authors:  Dorota Kostrzewa-Nowak; Paweł Wityk; Andrzej Ciechanowicz; Robert Nowak
Journal:  Sci Rep       Date:  2021-06-25       Impact factor: 4.379

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