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临床试验/NCT01778309
NCT01778309已完成不适用

Effects of NAC Supplementation on Skeletal Muscle Performance Following Aseptic Injury Induced by Exercise

Democritus University of Thrace2 个研究点 分布在 1 个国家目标入组 20 人开始时间: 2010年1月最近更新:
适应症

试验速览

阶段
不适用
状态
已完成
入组人数
20
试验地点
2
主要终点
Change in reduced glutathione in blood

研究概览

简要总结

In this investigation the investigators utilized NAC administration to foster GSH availability during an 8-day period following eccentric exercise-induced muscle damage in order to test our hypotheses: i) antioxidant supplementation does not disturb performance and adaptations induced by exercise-induced muscle injury and ii) redox status perturbations in skeletal muscle are pivotal for the regulation of muscle' inflammatory response and repair.

详细描述

The major thiol-disulfide couple of reduced (GSH) and oxidized glutathione (GSSG) is a key-regulator of major transcriptional pathways regulating aseptic inflammation and recovery of skeletal muscle following aseptic injury. Antioxidant supplementation may hamper exercise-induced cellular adaptations.

Our objective was to examine how thiol-based antioxidant supplementation affects skeletal muscle's performance and redox-sensitive signalling during the inflammatory and repair phases associated with exercise-induced micro-trauma.In a double-blind, counterbalanced design, 12 men received placebo (PLA) or N-acetylcysteine (NAC, 20 mg/kg/day) following muscle-damaging exercise (300 eccentric contractions). In each trial, muscle performance was measured at baseline, post-exercise, 2h post-exercise and daily for 8 consecutive days. Muscle biopsies from vastus lateralis and blood samples were collected pre-exercise and 2h, 2d, and 8d post-exercise.

研究设计

研究类型
Interventional
分配方式
Na
干预模型
Single Group
主要目的
Basic Science
盲法
Double (Participant, Outcomes Assessor)

入排标准

年龄范围
18 Years 至 30 Years(Adult)
性别
Male
接受健康志愿者

入选标准

  • a) recreationally trained as evidenced by their maximal oxygen consumption levels (VO2max >45 ml/kg/min), b) were engaged in systematic exercise at least three times/week for ≥12 months), c) non-smokers, d) abstained from any vigorous physical activity during the study, e)abstained from consumption of caffeine, alcohol, performance-enhancing or antioxidant supplements, and medications during the study.

排除标准

  • a) a known NAC intolerance or allergy, b) a recent febrile illness, c) history of muscle lesion, d) lower limb trauma

结局指标

主要结局

Change in reduced glutathione in blood

时间窗: one hour before exercise, 5 minutes post-exercise, 2 hours post-exercise, daily for 8 days post-exercise

Concentration of reduced glutathione in red blood cells

Change in reduced glutathione in muscle

时间窗: one hour before exercise, 2 hours post-exercise, 2 days post-exercise, 8 days post-exercise

concentration of reduced glutathione in quadriceps skeletal muscle group

Change in protein carbonyls in red blood cells and serum

时间窗: one hour before exercise, 5 minutes post-exercise, 2 hours post-exercise, daily for 8 days post-exercise

concentration of protein carbonyls

Change in protein carbonyls in muscle

时间窗: one hour before exercise, 2 hours post-exercise, 2 days post-exercise, 8 days post-exercise

protein carbonyl concentration in vastus lateralis skeletal muscle

Change in thiobarbituric acid reactive substances in red blood cells and serum

时间窗: one hour before exercise, 5 minutes post-exercise, 2 hours post-exercise, daily for 8 days post-exercise

thiobarbituric acid reactive substances concentration in serum and red blood cells

Change in thiobarbituric acid reactive substances in muscle

时间窗: one hour before exercise, 2 hours post-exercise, 2 days post-exercise, 8 days post-exercise

thiobarbituric acid reactive substances concentration in vastus lateralis skeletal muscle

Change in oxidized glutathione in red blood cells and blood

时间窗: one hour before exercise, 5 minutes post-exercise, 2 hours post-exercise, daily for 8 days post-exercise

Concentration of oxidized glutathione in red blood cells and whole blood

Change in total antioxidant capacity in serum

时间窗: one hour before exercise, 5 minutes post-exercise, 2 hours post-exercise, daily for 8 days post-exercise

Change in oxidized glutathione in muscle

时间窗: one hour before exercise, 2 hours post-exercise, 2 days post-exercise, 8 days post-exercise

concentration of oxidized glutathione in vastus lateralis skeletal muscle

Change in catalase activity in red blood cells and serum

时间窗: one hour before exercise, 5 minutes post-exercise, 2 hours post-exercise, daily for 8 days post-exercise

Change in glutathione peroxidase activity in red blood cells

时间窗: one hour before exercise, 5 minutes post-exercise, 2 hours post-exercise, daily for 8 days post-exercise

Change in creatine kinase activity in plasma

时间窗: one hour before exercise, 5 minutes post-exercise, 2 hours post-exercise, daily for 8 days post-exercise

Change in C-reactive protein in plasma

时间窗: one hour before exercise, 5 minutes post-exercise, 2 hours post-exercise, daily for 8 days post-exercise

Change in macrophage infiltration in muscle

时间窗: one hour before exercise, 2 hours post-exercise, 2 days post-exercise, 8 days post-exercise

Change in white blood cell count in blood

时间窗: one hour before exercise, 5 minutes post-exercise, 2 hours post-exercise, daily for 8 days post-exercise

Change in neutrophil count in blood

时间窗: one hour before exercise, 5 minutes post-exercise, 2 hours post-exercise, daily for 8 days post-exercise

Change in fatty acid binding protein in plasma

时间窗: one hour before exercise, 5 minutes post-exercise, 2 hours post-exercise, daily for 8 days post-exercise

Change in cortisol concentration in blood

时间窗: one hour before exercise, 5 minutes post-exercise, 2 hours post-exercise, daily for 8 days post-exercise

Change in testosterone concentration in plasma

时间窗: one hour before exercise, 5 minutes post-exercise, 2 hours post-exercise, daily for 8 days post-exercise

Change in cytokine concentration in plasma

时间窗: one hour before exercise, 5 minutes post-exercise, 2 hours post-exercise, daily for 8 days post-exercise

Measurement of IL-1β, IL-4, IL-6, TNF-α, IL-8, IL-10, IL-12p70 concentrations in plasma

Change in adhesion molecule concentration in blood

时间窗: one hour before exercise, 5 minutes post-exercise, 2 hours post-exercise, daily for 8 days post-exercise

Measurement of ICAM-1, VCAM-1, sP-selectin, sE-selectin concentrations in plasma

Change in intracellular signalling proteins in muscle

时间窗: one hour before exercise, 2 hours post-exercise, 2 days post-exercise, 8 days post-exercise

Measurement of phosphorylation levels of protein kinase B (Akt), mammalian target of rapamycin (mTOR), serine/threonine kinase (p70S6K), ribosomal protein S6 (rpS6), nuclear factor κB (NFκB), serine⁄threonine mitogen activated protein kinase (p38-MAPK) in vastus lateralis muscle.

Change in myogenic determination factor (MyoD) protein levels in muscle

时间窗: one hour before exercise, 2 hours post-exercise, 2 days post-exercise, 8 days post-exercise

MyoD expression in vastus lateralis muscle

Change in tumor necrosis factor α in muscle

时间窗: one hour before exercise, 2 hours post-exercise, 2 days post-exercise, 8 days post-exercise

Protein levels of TNF-α in vastus lateralis muscle

次要结局

  • Change in muscle function of knee extensor and flexor muscle(one hour before exercise, 5 minutes post-exercise, 2 hours post-exercise, daily for 8 days post-exercise)
  • Body composition(One day before exercise)
  • Maximal aerobic capacity(One day before exercise)
  • Change in profile of dietary intake(one hour before exercise, daily for 8 days post-exercise)
  • Change in side effect occurence(one hour before exercise, daily for 8 days post-exercise)

研究者

申办方类型
Other
责任方
Principal Investigator
主要研究者

Ioannis G. Fatouros

Assistant Professor

Democritus University of Thrace

研究点 (2)

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