Evidence of a Redox-Dependent Regulation of Immune Responses to Exercise-Induced Inflammation.

Alexandra Sakelliou, Ioannis G Fatouros, Ioannis Athanailidis, Dimitrios Tsoukas, Athanasios Chatzinikolaou, Dimitris Draganidis, Athanasios Z Jamurtas, Christina Liacos, Ioannis Papassotiriou, Dimitrios Mandalidis, Kimon Stamatelopoulos, Meletios A Dimopoulos, Asimina Mitrakou

Journal: Oxidative medicine and cellular longevity 2017;2016():2840643

PMID: 27974950

Abstract

We used thiol-based antioxidant supplementation (n-acetylcysteine, NAC) to determine whether immune mobilisation following skeletal muscle microtrauma induced by exercise is redox-sensitive in healthy humans. According to a two-trial, double-blind, crossover, repeated measures design, 10 young men received either placebo or NAC (20 mg/kg/day) immediately after a muscle-damaging exercise protocol (300 eccentric contractions) and for eight consecutive days. Blood sampling and performance assessments were performed before exercise, after exercise, and daily throughout recovery. NAC reduced the decline of reduced glutathione in erythrocytes and the increase of plasma protein carbonyls, serum TAC and erythrocyte oxidized glutathione, and TBARS and catalase activity during recovery thereby altering postexercise redox status. The rise of muscle damage and inflammatory markers (muscle strength, creatine kinase activity, CRP, proinflammatory cytokines, and adhesion molecules) was less pronounced in NAC during the first phase of recovery. The rise of leukocyte and neutrophil count was decreased by NAC after exercise. Results on immune cell subpopulations obtained by flow cytometry indicated that NAC ingestion reduced the exercise-induced rise of total macrophages, HLA macrophages, and 11B macrophages and abolished the exercise-induced upregulation of B lymphocytes. Natural killer cells declined only in PLA immediately after exercise. These results indicate that thiol-based antioxidant supplementation blunts immune cell mobilisation in response to exercise-induced inflammation suggesting that leukocyte mobilization may be under redox-dependent regulation.

Address: Department of Clinical Therapeutics, Medical School, University of Athens, 11527 Athens, Greece.; School of Physical Education and Sport Sciences, University of Thessaly, Karies, 42100 Trikala, Greece.; School of Physical Education and Sport Sciences, Democritus University of Thrace, 69100 Komotini, Greece.; Department of Toxicology, Medical School, University of Athens, 11527 Athens, Greece.; Department of Clinical Biochemistry, "Aghia Sophia" Children's Hospital, 11527 Athens, Greece.; School of Physical Education and Sport Science, University of Athens, Athens, Greece.
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