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Recovery Kinetics Following Change of Direction Training

Recovery Kinetics Following Change of Direction (COD) Training in Soccer: Implications for Different COD Angles

Status
Completed
Phases
NA
Study type
Interventional
Source
ClinicalTrials.gov
Registry ID
NCT04795232
Enrollment
10
Registered
2021-03-12
Start date
2021-04-01
Completion date
2023-06-30
Last updated
2023-10-10

For informational purposes only — not medical advice. Sourced from public registries and may not reflect the latest updates. Terms

Conditions

Skeletal Muscle Damage

Keywords

change of direction training, recovery, soccer, performance

Brief summary

This study aims at investigating the recovery kinetics of skeletal muscle damage, neuromuscular fatigue and performance following a single change of direction (COD) training session in competitive soccer players. The impact of COD degrees will be also examined by comparing a 45o vs. 90o COD training session. Ten male soccer players will perform a COD45 \[A single training session including 2x(10x \ 27.6m) sprints with two 45o COD in each sprint\], a COD90 \[A single training session including 2x(10x \ 21.2m) sprints with two 90o COD in each sprint\] and a Control trial (No intervention included, only daily measurements) in randomized, repeated measures, crossover design. Assessments related to skeletal muscle damage, neuromuscular fatigue and performance will be performed prior to training session and daily for three consecutive days post-training, in each trial.

Detailed description

Ten male soccer players will be included in this study. Participants will be initially informed about the aim of study as well as the associated risks and benefits and subsequently will provide their signed consent form. At baseline, they will undergo assessment of their anthropometrics (i.e. body mass and body height), body composition (by DXA), physical conditioning status \[maximal oxygen consumption (VO2max), Yo-Yo Intermittent Endurance test level 2 and Yo-Yo Intermittent Recovery test level 2\] and daily dietary intake. Thereafter, they will participate in two experimental trials and one control trial in a randomized, crossover, repeated measures design: i) COD45: Participants in this trial will perform a COD training session consisted of 2 sets of 10 x \ 27.6m sprints with two 45o COD in each sprint and a resting period of 16 sec and 2:20 min between sprints and sets, respectively, ii) COD90: Participants in this trial will perform a COD training session consisted of 2 sets of 10 x \ 21.2m sprints with two 90o COD in each sprint and a resting period of 16 sec and 2:20 min between sprints and sets, respectively, iii) Control: Participants in this trial will only participate in daily assessments to control for day to day variability in the depended variables (they will not receive any intervention). Prior to each trial, participants will provide a resting blood sample (for the determination of blood lactate, white blood cell count and creatine kinase activity) and undergo assessment of their delayed onset of muscle soreness (DOMS), maximal voluntary isometric contraction (MVIC), countermovement jump \[will be assessed using two force platforms at 1000 Hz and electromyography instrumentation (EMG)\], isokinetic peak torque of knee extensors and flexors (will be assessed on an isokinetic dynamometer), agility (will be assessed using the Illinois test), 10m and 30m sprint time (will be assessed by using light cells) and repeated sprint ability (5x30m sprints will be performed with 25 sec rest in-between). In COD45 and COD90 experimental trials, a blood sample will be collected immediately post-training for the determination of blood lactate concentration while assessment of DOMS, MVIC and countermovement jump will be performed at 1, 2 and 3 hours post-training. In all trials assessment of DOMS, MVIC, countermovement jump (CMJ), isokinetic peak torque, agility and sprinting performance as well as determination of creatine kinase activity and white blood cell count will be performed at 24, 48 and 72 hours post-training. A 7-day wash out period will applied between trials.

Interventions

OTHERCOD45

Participants will perform 2 sets of 10 sprints. The total distance for each sprint will be 27.6 meters and will include two changes of direction of 45 degrees. The recovery time will be 16 seconds between sprints and 2.20 minutes between sets

OTHERCOD90

Participants will perform 2 sets of 10 sprints. The total distance for each sprint will be 21.2 meters and will include two changes of direction of 90 degrees. The recovery time will be 16 seconds between sprints and 2.20 minutes between sets

Sponsors

University of Thessaly
Lead SponsorOTHER

Study design

Allocation
RANDOMIZED
Intervention model
CROSSOVER
Primary purpose
OTHER
Masking
NONE

Eligibility

Sex/Gender
MALE
Age
18 Years to 35 Years
Healthy volunteers
Yes

Inclusion criteria

* Soccer players participating in at least 5 training sessions per week and 1official match * Participation at a competitive level for at least 4 years * Free of musculoskeletal injuries * No use of ergogenic supplements or medication * Non-smokers

Exclusion criteria

* Musculoskeletal injury * Use of alcohol, caffeine and any type of ergogenic supplements or medication during the course of the study

Design outcomes

Primary

MeasureTime frameDescription
Change in blood lactate concentrationAt baseline and immediately post change of direction training sessionBlood lactate will be measured using a lactate plus system
Change in peak normalized electromyography (EMG) during the eccentric and concentric phases of the countermovement jumpAt baseline, at 1, 2, 3, 24, 48 and 72 hours after change of direction training sessionEMG data will be collected wirelessly at 2000 Hz using a Myon MA-320 EMG system (Myon AG, Switzerland) for the vastus lateralis, biceps femoris, gastrocnemius and gluteus maximus muscles.
Change in mean normalized electromyography (EMG) during the eccentric and concentric phases of the countermovement jumpAt baseline, at 1, 2, 3, 24, 48 and 72 hours after change of direction training sessionEMG data will be collected wirelessly at 2000 Hz using a Myon MA-320 EMG system (Myon AG, Switzerland) for the vastus lateralis, biceps femoris, gastrocnemius and gluteus maximus muscles.
Change in repeated sprint abilityAt baseline, at 24, 48 and 72 hours after change of direction training sessionRepeated sprint ability will be tested using 5x30 m sprints with 25 seconds rest in-between
Change in sprint time of 10mAt baseline, at 24, 48 and 72 hours after change of direction training session10m sprint time will be assessed using light cells
Change in sprint time of 30mAt baseline, at 24, 48 and 72 hours after change of direction training session30m sprint time will be assessed using light cells
Change in agilityAt baseline, at 24, 48 and 72 hours after change of direction training sessionAgility will be assessed using the illinois agility test.
Change in field activity during the change of direction training sessionDuring the change of direction training sessionField activity will be continuously monitored during the change of direction training session by using global positioning system (GPS)
Change in heart rate during the change of direction training sessionDuring the change of direction training sessionHeart rate will be continuously monitored during the change of direction training session by using heart rate monitors.
Change in creatine kinase activityAt baseline, at 24, 48 and 72 hours after change of direction training sessionCreatine kinase activity will be measured in plasma
Change in white blood cell countAt baseline, at 24, 48 and 72 hours after change of direction training sessionWhite blood cell count will be measured by using an automatic blood analyzer
Change in delayed onset of muscle sorenessAt baseline, at 1, 2, 3, 24, 48 and 72 hours after change of direction training sessionMuscle soreness will be assessed by palpation of the muscle belly and the distal region
Change in isometric peak torqueAt baseline, at 1, 2, 3, 24, 48 and 72 hours after change of direction training sessionIsometric peak torque will be assessed on an isokinetic dynamometer
Change in fatigue index of maximal voluntary isometric contraction during 10 secondsAt baseline, at 1, 2, 3, 24, 48 and 72 hours after change of direction training sessionFatigue rate will be determined by calculating the percent drop of peak torque between the first and the last three seconds of a 10-second maximal isometric contraction
Change in isokinetic peak torque of knee extensorsAt baseline, at 24, 48 and 72 hours after change of direction training sessionIsokinetic peak torque will be assessed on an isokinetic dynamometer in both limbs
Change in isokinetic peak torque of knee flexorsAt baseline, at 24, 48 and 72 hours after change of direction training sessionIsokinetic peak torque will be assessed on an isokinetic dynamometer in both limbs
Change in countermovement jump heightAt baseline, at 1, 2, 3, 24, 48 and 72 hours after change of direction training sessionCountermovement jump height will be assessed by using two force platforms at 1000 Hz, with each foot in parallel on the two platforms providing a separate yet time-synchronized measurement of the jump height for each leg
Change in ground reaction force during countermovement jumpAt baseline, at 1, 2, 3, 24, 48 and 72 hours after change of direction training sessionGround reaction force will be assessed by using two force platforms at 1000 Hz, with each foot in parallel on the two platforms providing a separate yet time-synchronized measurement of the jump height for each leg
Change in peak power during countermovement jumpAt baseline, at 1, 2, 3, 24, 48 and 72 hours after change of direction training sessionPeak power will be assessed using two force platforms at 1000 Hz, with each foot in parallel on the two platforms providing a separate yet time-synchronized measurement of the jump height for each leg
Change in mean power during countermovement jumpAt baseline, at 1, 2, 3, 24, 48 and 72 hours after change of direction training sessionMean power will be assessed using two force platforms at 1000 Hz, with each foot in parallel on the two platforms providing a separate yet time-synchronized measurement of the jump height for each leg
Change in vertical stiffness during countermovement jumpAt baseline, at 1, 2, 3, 24, 48 and 72 hours after change of direction training sessionVertical stiffness will be assessed using two force platforms at 1000 Hz, with each foot in parallel on the two platforms providing a separate yet time-synchronized measurement of the jump height for each leg
Change in peak rate of force development during countermovement jumpAt baseline, at 1, 2, 3, 24, 48 and 72 hours after change of direction training sessionPeak rate of force development will be assessed using two force platforms at 1000 Hz, with each foot in parallel on the two platforms providing a separate yet time-synchronized measurement of the jump height for each leg

Secondary

MeasureTime frameDescription
Body heightAt baselineBody height will me measured on a beam balance with stadiometer
Body fatAt baselineBody fat will be assessed by using Dual-emission X-ray absorptiometry
Lean body massAt baselineLean body mass will be assessed by using Dual-emission X-ray absorptiometry
Maximal oxygen consumption (VO2max)At baselineVO2max will be measured by open circuit spirometry via breath by breath method
Yo-Yo Intermittent Endurance Test level 2 performanceAt baseline
Yo-Yo Intermittent Recovery Test level 2 performanceAt baseline
Dietary intakeAt baselineDietary intake will be assessed over a 7-day period by using diet recalls
Body massAt baselineBody mass will me measured on a beam balance with stadiometer

Countries

Greece

Outcome results

None listed

Source: ClinicalTrials.gov · Data processed: Feb 4, 2026