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临床试验/NCT03602248
NCT03602248已完成不适用

Acute Effects of Two Different Speed Endurance Protocols on Performance, Muscle Damage Markers and Neuromuscular Fatigue in Soccer Players

University of Thessaly1 个研究点 分布在 1 个国家目标入组 10 人开始时间: 2018年5月8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
10
试验地点
1
主要终点
Differences in changes in maximal concentric strength between the two training protocols

研究概览

简要总结

Soccer is an intermittent sport in which the aerobic and anaerobic capacity of the players are both very important. Elite football players perform an average of 150-250 short and intense movements during a match, demonstrating the significant contribution of the anaerobic energy system. Speed endurance training consists a tool to enhance the performance of aerobic and anaerobic system. This training includes actions such as sprinting, changes of direction, accelerations, decelerations, jumps and shooting, characterized by a strong eccentric component. Eccentric actions are associated with exercise induced muscle damage (EIMD). Nevertheless, to date, EIMD responses following a session of speed endurance training have not yet been investigated. Therefore, the aim of the present study is to examine the EIMD responses and changes on performance and neuromuscular fatigue indices after two different speed endurance training protocols.

详细描述

Football is a team sport in which mean and maximum heart rate ranges from 85 to 98% of the maximum heart rate during a competitive match. Elite football players perform an average of 150-250 short and intense movements during a match while blood lactate values range from 2 to 14 mmol/L demonstrating that the anaerobic energy system contributes significantly during the game. Acceleration and deceleration ability as well as ability to perform repeated sprints and changes of direction greatly determine performance in soccer.

Soccer players' ability to perform repetitive high intensity sprints over a long period of time can be improved by speed endurance training. Speed endurance training consists of repetitive intense exercise bouts at a higher intensity than maximum aerobic speed (MAS) lasting from 10 to 40 seconds and has been proven to be an important tool for improving performance in trained soccer players. Improved performance is attributed to the muscle's increased regulatory capacity regarding intense exercise, enhanced recovery of the energy stores, increased activity and number of muscle enzymes and accelerated by-products removal, thereby contributing to the maintenance of homeostasis and delay of fatigue occurrence during intense exercise.

Speed endurance training includes repeated high intensity actions such as sprinting, changes of direction, accelerations, decelerations, jumps and shooting. However, these movements have a strong eccentric component which has been associated with exercise induced muscle damage (EIMD) and inflammation. EIMD increases plasma creatine kinase (CK) levels and the delayed onset of muscle soreness (DOMS) and reduces power production capacity. CK increases after a soccer match, peaks at 48 hours and returns to rest values 5-7 days after the match. DOMS increases immediately after a soccer match, peaks at 24-72 hours and is normalized ~5 days post match. The reduction in power production capacity is observed immediately after the match and remains reduced for ~72 hours with the largest decrease observed at 48 hours post-match. Nevertheless, to date, EIMD responses following a session of speed endurance training have not yet been investigated. Therefore, the aim of the proposed study is to examine the EIMD responses and changes on performance and neuromuscular fatigue indices after two speed endurance training protocols.

A preliminary power analysis (effect size >0.55, probability error of 0.05, power of 0.90) revealed that a total sample of 8-10 soccer players required to detect statistically meaningful differences after a speed endurance training protocol.

A randomized, three-trial (speed endurance protocol A vs. speed endurance protocol B vs. control), cross-over, repeated measures design will be implemented. The study will be performed one week after the end of the in-season to minimize the detraining effect. Prior to the first trial participants will have their body mass, height, body composition and performance measured and will be familiarized with all the testing procedures. Each experimental trial (speed endurance training protocol A and B) will include a speed endurance training session on Monday. The second trial (between training trials) will serve as control, where only performance measurements and blood sampling will be performed. Performance assessment and blood sampling will be performed immediately after each speed endurance training session and daily for three days post training session. Each training session will be performed on natural grass surface under the same environmental conditions (i.e. temperature and humidity). A 5-day recovery period will be used between trials. During the training sessions, participants will consume only water ad libitum. Field activity during training sessions will be recorded using high time-resolution Global Positioning System (GPS) instrumentation and heart rate monitoring. Before each training session, a standard breakfast and meal will be consumed by all players as previously described.

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
None

入排标准

年龄范围
18 Years 至 25 Years(Adult)
性别
Male
接受健康志愿者
是

入选标准

  • •Absence of any musculoskeletal injury for at least 6 months prior to the study
  • •No use of any drugs or ergogenic supplements for at least 6 months prior to the study
  • •Absence of regular soccer training for the last 3 years

排除标准

  • •Any recent incidence of musculoskeletal injury
  • •Use of any drugs or ergogenic supplements for the last 6 months
  • •Regular soccer training for the last 3 years

研究组 & 干预措施

Speed endurance training protocol A

Experimental

Performance of two different speed endurance training protocols:

Speed endurance training protocol A will consist of 1 set of 8 repetitions interspersed by 2,5 minutes of recovery with a work to rest ratio of 1:5 (25-30 seconds all out work).

干预措施: Speed endurance training protocol A (Other)

Speed endurance training protocol B

Experimental

Speed endurance training protocol B will consist of 1 set of 8 repetitions interspersed by 4 minutes of recovery with a work to rest ratio of 1:8 (25-30 seconds all out work)

干预措施: Speed endurance training protocol B (Other)

Control condition

No Intervention

No training protocol will be performed, the participants will perform only the measurements for performance and muscle damage and neuromuscular fatigue

结局指标

主要结局

Differences in changes in maximal concentric strength between the two training protocols

时间窗: Baseline, Day 1, Day 2, Day 3

Maximal concentric strength is used as a muscle damage marker

Differences in changes in creatine kinase (CK) between the two training protocols

时间窗: Baseline, Day 1, Day 2, Day 3

Creatine kinase (CK) is a muscle damage marker

Differences in changes in delayed onset of muscle soreness (DOMS) between the two training protocols

时间窗: Pre-protocol, Day 1, Day 2, Day 3

Delayed onset of muscle soreness (DOMS) is a muscle damage marker

Differences in changes in maximal eccentric strength between the two training protocols

时间窗: Baseline, Day 1, Day 2, Day 3

Maximal eccentric strength is used as a muscle damage marker

次要结局

  • Differences in changes in countermovement jump between the two training protocols(Baseline, Day 1, Day 2, Day 3)
  • Differences in changes in maximal isometric strength between the two training protocols(Baseline, Hour 1, Hour 2, Hour 3)
  • Differences in changes in Repeated Sprint Ability (RSA) between the two training protocols(Baseline, Day 1, Day 2, Day 3)
  • Differences in changes in maximal concentric strength between the two training protocols(Baseline, Day 1, Day 2, Day 3)
  • Differences in changes in maximal eccentric strength between the two training protocols(Baseline, Day 1, Day 2, Day 3)

研究者

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

Ioannis G. Fatouros

Associate Professor

University of Thessaly

研究点 (1)

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