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Clinical Trials/NCT03936595
NCT03936595TerminatedNot Applicable

Investigation on the Recovery Kinetics of Performance, Muscle Damage and Neuromuscular Fatigue Indicators, Following Different Protocols for Muscle Power Development

University of Thessaly1 site in 1 country10 target enrollmentStarted: May 6, 2019Last updated:
Conditions
Interventions

Trial Snapshot

Phase
Not Applicable
Status
Terminated
Enrollment
10
Locations
1
Primary Endpoint
Change on countermovement jump (CMJ) height

Study Overview

Brief Summary

Muscle power is one of the most important parameters in almost every athletic action, and expresses the ability of the human muscle to produce great amounts of force with the greatest possible speed. Thus, muscle power is critical for high performance in athletic actions such as jumping, throwing, change of direction and sprinting. For enhancing their muscle power, athletes comprise several resistance training programs as part of their training. Muscle power training comprises of eccentric muscle actions, and the magnitude of these actions depend on the emphasis that is given on the concentric or eccentric action, respectively, of the muscles during the exercises. However, eccentric muscle action, especially when unaccustomed, can lead to exercise-induced muscle damage (EIMD), and deterioration of muscle performance.

Despite the fact that muscle power training comprises eccentric muscle actions, and consequently can lead to muscle injury and muscle performance reduction during the following days, the recovery kinetics after acute muscle power training have not been adequately studied. However, information regarding the recovery of the muscles after a power training protocol, is critical for the correct design of a training microcycle, and the reduction of injury risk.

The aim of the present study is to investigate the muscle injury provoked after acute muscle power training using three different power training exercise protocols. Additionally, we will examine the effect of these protocols on muscle performance and neuromuscular fatigue indices.

Detailed Description

Muscle power is one of the most important parameters in almost every athletic action, and expresses the ability of the human muscle to produce great amounts of force with the greatest possible speed. Thus, muscle power is critical for high performance in athletic actions such as jumping, throwing, change of direction and sprinting.

For enhancing their muscle power, athletes comprise several resistance training programs as part of their training. Core exercises as long as Olympic lifting has been used in muscle power training. The loads that are applied regarding the accomplishment of the most favorable power production are varying. Training load of 0% 1RM favored power production at the countermovement squat jump, while loads of 56% 1rm and 80% 1RM, favored the power production at squat and hang clean, respectively. Additionally, In the recent years, accentuated eccentric training has been proposed as a new training method for the enhancement of muscle power. This method emphasizes the eccentric component of the muscle contraction, and there is evidence supporting the greater production of muscle force after accentuated eccentric training compared with the typical resistance exercise training method.

Taking the above into consideration, muscle power training comprises of eccentric muscle actions, and the magnitude of the eccentric component depends on the emphasis that is given on the concentric or eccentric action, respectively, of the muscles during the exercises. However, eccentric muscle action, especially when unaccustomed, can lead to exercise-induced muscle damage (EIMD). Although concentric and isometric exercise may also lead to muscle injury, the amount of damage after eccentric muscle contractions is greater. EIMD, amongst others, is accompanied by increased levels of creatine kinase (CK) into the circulation, increased delayed onset of muscle soreness (DOMS), reduction of force production, reduction of flexibility speed.

Despite the fact that muscle power training comprises eccentric muscle actions, and consequently can lead to muscle injury and muscle performance reduction during the following days, the recovery kinetics after acute muscle power training protocols have not been adequately studied. However, information regarding the recovery of the muscles after a power training protocol, is critical for the correct design of a training microcycle, and the reduction of injury risk.

The aim of the present study is to investigate the muscle injury provoked after muscle acute power training using three different power training exercise protocols. Additionally, the effect of these protocols on muscle performance and neuromuscular fatigue indices will be examined.

Study Design

Study Type
Interventional
Allocation
Randomized
Intervention Model
Crossover
Primary Purpose
Treatment
Masking
None

Eligibility Criteria

Ages
18 Years to 35 Years (Adult)
Sex
Male
Accepts Healthy Volunteers
Yes

Inclusion Criteria

  • •No recent history of musculoskeletal injury
  • •No use of ergogenic supplements and drugs
  • •No use of anti-inflammatory and antioxidant supplements (> 6 months)
  • •No participation at intense eccentric exercise for at least 3 days before protocols

Exclusion Criteria

  • •Recent history of musculoskeletal injury
  • •Use of ergogenic supplements and drugs
  • •Use of anti-inflammatory and antioxidant supplements (< 6 months)
  • •Participation at intense eccentric exercise for at least 3 days before protocols

Arms & Interventions

Core exercises protocol

Experimental

Participants will perform 4 core exercises

Intervention: Core exercises protocol (Other)

Control condition

Other

Participants will perform all the measurements that are comprised in the experimental conditions without performing any exercise protocol

Intervention: Control condition (Other)

Structural exercises protocol

Experimental

Participants will perform 4 structural (Olympic lifting) exercises

Intervention: Structural exercises protocol (Other)

Accentuated eccentric load exercises protocol

Experimental

Participants will perform 4 exercises with eccentric loading

Intervention: Accentuated eccentric load exercises protocol (Other)

Outcomes

Primary Outcomes

Change on countermovement jump (CMJ) height

Time Frame: Prior to, immediately after, 1, 2, 3 days after the end of the experimental protocol

CMJ height will be measured in 3 maximal efforts (the best jump will be recorded) on an Ergojump contact platform

Change on isometric peak torque of the knee flexors (KF)

Time Frame: Prior to, immediately after, 1, 2, 3 days after the end of the experimental protocol

Isometric peak torque of the KF will be measured on an isokinetic dynamometer at 60◦/sec

Change on concentric isokinetic peak torque of the knee extensors (KE)

Time Frame: Prior to, immediately after, 1, 2, 3 days after the end of the experimental protocol

Concentric peak torque of the KE will be measured on an isokinetic dynamometer at 60◦/sec

Change on isometric peak torque of the knee extensors (KE)

Time Frame: Prior to, immediately after, 1, 2, 3 days after the end of the experimental protocol

Isometric peak torque of the KE will be measured on an isokinetic dynamometer at 60◦/sec

Change on the concentration of blood lactate

Time Frame: Prior to, and immediately after the end of the experimental protocol

Lactate will be measured with a portable lactate analyzer using capillary blood

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

Time Frame: Prior to, immediately after, 1, 2, 3 days after the end of the experimental protocol

Participants will perform three repetitions of a full squat movement, and rate their soreness level in knee flexors and extensors on a visual analog scale from 1 to 10 (VAS, with "no pain" at one end and "extremely sore" at the other), using palpation of the belly and the distal region of relaxed knee extensors and flexors.

Change one eccentric isokinetic peak torque of the knee extensors (KE)

Time Frame: Prior to, immediately after, 1, 2, 3 days after the end of the experimental protocol

Eccentric peak torque of the KE will be measured on an isokinetic dynamometer at 60◦/sec

Change on concentric isokinetic peak torque of the knee flexors (KF)

Time Frame: Prior to, immediately after, 1, 2, 3 days after the end of the experimental protocol

Concentric peak torque of the KF will be measured on an isokinetic dynamometer at 60◦/sec

Change on eccentric isokinetic peak torque of the knee flexors (KF)

Time Frame: Prior to, immediately after, 1, 2, 3 days after the end of the experimental protocol

Eccentric peak torque of the KF will be measured on an isokinetic dynamometer at 60◦/sec

Change on the concentration of plasma CK activity

Time Frame: Prior to, immediately after, 1, 2, 3 days after the end of the experimental protocol

Plasma CK activity will be measured with a biochemical analyzer

Secondary Outcomes

No secondary outcomes reported

Investigators

Sponsor Class
Other
Responsible Party
Principal Investigator
Principal Investigator

Ioannis G. Fatouros

Professor

University of Thessaly

Study Sites (1)

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