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临床试验/NCT06417671
NCT06417671已完成不适用

The Effect of Postbiotics Supplementation on Exercise-induced Oxidative Stress.

University of Thessaly1 个研究点 分布在 1 个国家目标入组 16 人开始时间: 2024年5月15日最近更新:
适应症
干预措施

试验速览

阶段
不适用
状态
已完成
入组人数
16
试验地点
1
主要终点
Changes in creatine kinase (CK)

研究概览

简要总结

Scientific data on the effect of supplementation of postbiotics on exercise-induced oxidative stress are scarce. The main purpose of the research is to investigate the effect of postbiotics supplementation on exercise-induced oxidative stress and performance indicators after intense exercise. The study will be a cross-over, randomized, double-blind, controlled study that will be conducted in two cycles. Participants will be randomly assigned into one of the two trials: i) Postbiotics supplementation for 4 weeks, ii) Placebo supplementation for 4 weeks. Participants will then perform a 45-min treadmill running at (-15% slope, ~70% VO2max) followed by a time-trial (0% slope, ~95% VO2max) until exhaustion. Before, as well as 24 h, 48 h and 72 h after the exercise, participants will undergo measurements of exercise-induced muscle damage (EIMD) [delayed onset of muscle soreness (DOMS), creatine kinase], blood redox status [total antioxidant capacity, catalase, protein carbonyls, reduced glutathione, oxidized glutathione], and isokinetic performance (knee-extensors and knee-flexors isometric, concentric, eccentric torque) evaluation. In addition, metabolism (lactic acid) will be assessed before and 4 min after exercise. Afterwards, the participants will receive the postbiotics supplement or the placebo for 4 weeks, and will repeat the exercise protocol and measurements of EIMD, blood redox status and performance indices at the same time-points. At the second cycle, the participants will repeat the above procedures under the remaining condition. Between conditions, there will be a 14-day washout period. The results of the research will provide important information for coaches and physically active individuals, regarding the effectiveness of postbiotics in alleviating oxidative stress and improving performance after intense exercise.

详细描述

Acute, vigorous and/or unaccustomed exercise can induce muscle injury and oxidative stress. At moderate concentrations, reactive oxygen and nitrogen species (RONS) act as signaling molecules and promote adaptations to systematic training. Conversely, excessive production of RONS may cause destructive effects, due to the oxidation of important biomolecules such as lipids and proteins, but also DNA. Disruption of the redox balance can bring about adverse effects on exercise-induced adaptations, such as muscle damage and fatigue. For this reason, many professional as well as amateur athletes, often consume nutritional supplements such as antioxidants, anticipating to reduce inflammation and oxidative stress after intense exercise.

The human gastrointestinal tract is inhabited by various microorganisms, called the gut microbiome (GM). GM, among other things, contributes to the normal functioning of the immune system, contributes to the production of short-chain fatty acids (SCFAs) and vitamin synthesis as well as the digestion and absorption of food, protects against enteropathogens and regulates inflammatory and redox responses. Recent evidence also suggests that GM may be involved in athletic performance. In contrast, disruption of GM composition (dysbiosis) is characterized by reduced diversity, reduced abundance of health-promoting bacteria, and increased abundance of gram-negative and other pathogenic bacteria and is associated with various metabolic diseases such as obesity, diabetes, and various forms of cancer, systemic inflammation, oxidative stress and reduced performance. Thus, the supplementation of several "biotics" has been emerged as a means to regulate the GM in favor of health-promoting bacteria.

Postbiotics is defined as a "preparation of inanimate microorganisms and/or their components that confers a health benefit on the host". Evidence suggests that supplementation with postbiotics may regulate the GM, and consequently, strengthen the immune system, reduce intestinal permeability, improve antioxidant mechanisms, as well as accelerate recovery after exercise-induced inflammation, enhance adaptations to exercise, and improve performance. However, the scientific data regarding the possible beneficial effect of supplemental administration of postbiotics is limited. More research is needed, in order to determine the role of postbiotics supplementation on exercise-induced inflammation and redox status, but also on performance after intense exercise.

This study will investigate the potential of postbiotics supplementation to affect the recovery of exercise-induced oxidative stress and performance following intense, eccentrically biased acute exercise.

The study will be cross-over, randomized, double-blind, controlled, and will be conducted in two cycles. The participants, will be primarily informed of the study procedures, as well as the benefits and possible risks, they will also sign an informed consent form for participation in the study. Before the experimental procedure, they will be involved in a week of familiarization to the evaluation tests and the exercise protocol, at a low intensity. In addition, the participants will record their diet via a 7-days recall before their participation in the first experimental condition, and dietary data will be analyzed with ScienceFit Diet 200A diet analysis program (Science Technologies, Athens, Greece), in order to estimate that they do not consume nutrients that may affect muscle injury, inflammation and oxidative stress (e.g. antioxidants, etc.). Baseline measurements will take place at the Laboratory of Biochemistry, Physiology and Nutrition of Exercise (SmArT Lab), Department of Physical Education and Sports, University of Thessaly: anthropometric characteristics (body height, body mass, body mass index) via a stadiometer-scale (Stadiometer 208; Seca, Birmingham, UK), body composition (amount of body fat, lean body mass, fat mass, bone density) via by dual emission X-ray absorptiometry (DXA, GE-Healthcare, Lunar DPX NT, Belgium), aerobic capacity (VO2max) via an automated online pulmonary gas analyzer (Vmax Encore 29, BEBJO296, Yorba Linda, CA, USA) during a graded exercise protocol on a treadmill (Stex 8025T, Korea), isokinetic strength (isometric, concentric and eccentric torque of the knee extensors and knee flexors) on an isokinetic dynamometer (Cybex, HUMAC NORM 360, Ronkonkoma, NY), and muscle power via the assessment of countermovement jump (CMJ) via an optical measurement system (Optojump next, Microgate, USA). Participants will then be randomized in one of the two conditions: i) Postbiotics supplementation (50mg/day of Heat-killed Lactobacillus plantarum L-137, Immuno-LP20TM) for 4 weeks, or ii) placebo supplementation for 4 weeks. Randomization of the conditions will be done by a software generating random integers available on the internet (Random.org). Seven days later, participants will perform an exercise protocol comprised of 45 min downhill running (-15% slope, ~70-75% VO2max) on a treadmill followed by a time-trial (0% slope, ~95% VO2max) until exhaustion. Before the exercise protocol, as well as 24 h, 48 h and 72 h after exercise, delayed onset of muscle soreness (DOMS) via palpation of the knee extensors and knee flexors on a scale of 1 to 10 (1 = no pain at all; 10 = extreme pain), and muscle performance (CMJ, isometric, concentric and eccentric torque of the knee extensors and knee flexors) will be assessed. Additionally, blood samples will be collected at the same time-points for the assessment of creatine kinase (CK), and blood redox status [reduced glutathione (GSH), oxidized glutathione (GSSG), GSH/GSSG ratio, total antioxidant capacity (TAC), catalase (CAT), protein carbonyls (PC), uric acid, bilirubin)]. Furthermore, metabolism (lactic acid) will be assessed before and 4 min after exercise by analyzing capillary blood with a portable lactate analyzer (Lactate Plus, Nova Biomedical, USA). After a 14-days washout period, participants will repeat the exact same procedures for the remaining condition in the second cycle. Additionally, the 7-day diet recall will be given to the participants to follow the same diet before the experimental exercise protocol at the second cycle.

研究设计

研究类型
Interventional
分配方式
Randomized
干预模型
Crossover
主要目的
Screening
盲法
Triple (Participant, Care Provider, Outcomes Assessor)

盲法说明

The randomization of the participants to the supplement or placebo condition will be performed via a random integer set generator (Random.org) available online.

Neither the participants, nor the supplement provider will be aware of whether participants receive the postbiotic supplement or the placebo. Additionally, blood samples will be masked during the biochemical analysis, and during the statistical analysis.

入排标准

年龄范围
18 Years 至 45 Years(Adult)
性别
All
接受健康志愿者
是

入选标准

  • •Physically active subjects (VO2max ≥35ml/kg/min)
  • •Absence of musculoskeletal injury (≥6 months)
  • •Abstinence from the use of ergogenic supplements (≥1 month)
  • •Abstinence from anti-inflammatory drugs (≥1 month)
  • •Abstinence from pre-pro-postbiotic supplements (≥6 months)
  • •Abstinence from participating in exercise with eccentric content for at least 7 days before exercise
  • •Abstinence from alcohol and energy drinks before exercise

排除标准

  • •Recent history of musculoskeletal injury (<6 months)
  • •Use of ergogenic performance supplements (<1 month)
  • •Taking anti-inflammatory drugs (<1 month)
  • •Taking pre-pro-postbiotic supplements (<6 months)
  • •Participation in exercise with eccentric content in the previous 7 days before exercise
  • •Consumption of alcohol and energy drinks before exercise

研究组 & 干预措施

Postbiotics supplementation

Experimental

Supplementation of postbiotics for 4 weeks

干预措施: Postbiotics supplementation (Dietary Supplement)

Placebo supplementation

Placebo Comparator

Supplementation of placebo for 4 weeks

干预措施: Placebo supplementation (Dietary Supplement)

结局指标

主要结局

Changes in creatine kinase (CK)

时间窗: At baseline (pre), 24 hours post-, 48 hours post-, 72 hours post-exercise

CK will be will be measured in serum

Changes in GSH/GSSG ratio

时间窗: At baseline (pre), 24 hours post-, 48 hours post-, 72 hours post-exercise

GSH/GSSG ratio will be calculated

Changes in bilirubin

时间窗: At baseline (pre), 24 hours post-, 48 hours post-, 72 hours post-exercise

Concentration of bilirubin will be measured in plasma

Changes in in delayed onset of muscle soreness (DOMS) in the knee flexors (KF) and extensors (KE) of both limbs

时间窗: At baseline (pre), 24 hours post-, 48 hours post-, 72 hours post-exercise

Muscle soreness of the KF and KE will be assessed via palpation of the muscle belly and the distal regions following 3 squats, and the subjective pain will be recorded on a 10-point scale (1 = no pain, 10 = extreme pain)

Changes in PC

时间窗: At baseline (pre), 24 hours post-, 48 hours post-, 72 hours post-exercise

Concentration of PC will be measured in plasma

Changes in reduced glutathione (GSH)

时间窗: At baseline (pre), 24 hours post-, 48 hours post-, 72 hours post-exercise

Concentration of GSH will be measured in red blood cells

Changes in blood lactate

时间窗: At baseline (pre), and 4 min post-trial

Concentration of lactate will be measured in capillary blood

Changes in isokinetic strength of knee extensors (KE) and knee flexors (KF)

时间窗: At baseline (pre), 24 hours post-, 48 hours post-, 72 hours post-exercise

Isometric, concentric and eccentric peak torque of the KE and KF of both limbs will be assessed on an isokinetic dynamometer

Changes in malondialdehyde (MDA)

时间窗: At baseline (pre), 24 hours post-, 48 hours post-, 72 hours post-exercise

Concentration of MDA will be measured in plasma

Changes in oxidized glutathione (GSSG)

时间窗: At baseline (pre), 24 hours post-, 48 hours post-, 72 hours post-exercise

Concentration of GSSG will be measured in red blood cells

Changes in uric acid

时间窗: At baseline (pre), 24 hours post-, 48 hours post-, 72 hours post-exercise

Concentration of uric acid will be measured in plasma

Changes in catalase

时间窗: At baseline (pre), 24 hours post-, 48 hours post-, 72 hours post-exercise

Concentration of catalase will be measured in red blood cells

Changes in total antioxidant capacity (TAC)

时间窗: At baseline (pre), 24 hours post-, 48 hours post-, 72 hours post-exercise

TAC will be measured in plasma

Changes in countermovement jump (CMJ) height

时间窗: At baseline (pre), 24 hours post-, 48 hours post-, 72 hours post-exercise

CMJ height will be measured with an optical system

次要结局

未报告次要终点

研究者

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

Chariklia K. Deli

Associate Professor

University of Thessaly

研究点 (1)

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