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Completed

NCT Number: NCT04748315

Recovery Kinetics After Speed-Εndurance Maintenance Training

The purpose of this study will be to inestigate the recovery kinetics on performance, neuromuscular fatigue and muscle microtaruma that will occur after two speed-endurance maintenance training protocols in elite male soccer players. Also, this study will determine the comparison between two different speed endurance maintenance protocols in neuromuscular fatigue, muscle microtrauma indicators and performance factors. The training protocols will be differentiated in training work to rest ratio. The firts training protocol trial will comprise the work to rest ratio (1:1) and the other trial will comprise the work to rest ratio 1:3.

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Key information

Conditions

Age range

18 year–35 year

Sex eligibility

Male

Study type

Interventional

Phase

Not applicable

Primary location

University o Thessaly, School of Physical Education and Sports Science

Trikala, 42100, Greece

About this study

Speed endurance maintenance training is utilized in order to improve the repeated sprint and high speed running ability of soccer players during a soccer match. Also, speed endurance maintenance training includes soccer drills which stimulate high speed and powerful actions such as changes of directions, accelerations and decelerations. However these actions are associated with eccentric component and it is known that eccentric exercises induces muscle damage microtrauma. Thus, the aim of this study will be to investigate the recovery kinetics on performance, neuromuscular fatigue and muscle microtrauma that will occur after two speed-endurance maintenance training protocols in elite male soccer players. The speed endurance maintenance training (SEMT) sessions will be differentiated in training volume and specifically in the work to rest period. Specifically, a randomized three-trial, cross-over, repeated measures design will be applied. Elite male soccer players (aged 18-35 years) will participate in the present study. Also, it is considered necessary that the participants will not suffer from any musculoskeletal injuries that will limit their ability to perform the SEMT sessions. Also the participants will not be smokers and will not consume alcohol and ergogenic nutritional supplements before and during the study.

In the first phase all participants will sign an informed consent form after they will be informed about all benefits and risks of this study and they will sign a recent historical of musculoskeletal injury or illness form. Subsequently, fasting blood samples will be collected by venipuncture using a disposable needle (10-gauge) in order to estimate muscle damage concentration markers (CK), blood lactate and inflammation markers (WBC). After, delayed onset muscle soreness (DOMS) in the knee flexors (KF) and extensors (KE) of both limbs, body weight (BW), height and body composition (DXA method) will be measured in the lab. Completing the first phase, participants will be instructed by a dietitian how to record a 7 days diet recalls estimating that the energy intake during the trials will be the same. The counter movement jump (CMJ) will be measured 24 hour after (second phase) on a force platform 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 data for each leg. During the CMJ will be measured the jump height (cm), the ground reaction force (N), the peak and mean power (W/kg), the vertical stiffness (Kvert, N/m/kg) and the peak rate of force development (RFD, N/s), while at the same time will be evaluated the change in peak and mean normalized EMG during the eccentric and concentric phases of the counter movement jump, for the vastus lateralis (VL), biceps femoris (BF), gastrocnemius (GAS), and gluteus maximus (GM) muscles. Electromyography data will be collected wirelessly at 2.000 Hz using a Myon MA-320 EMG system. The peak eccentric and concentric isokinetic torque of the knee flexors and extensors, in both limbs will be evaluated on an isokinetic dynamometer at 60°/sec. Also, the isometric peak torque of the knee extensors will be evaluated at 65o in both limbs. Also the fatigue rate during maximal voluntary isometric contraction will be estimated through the percent drop of peak torque between the first and the last three seconds of a 10-secong maximal isometric contraction. Also, the speed of 10m and 30m will be measured using light cells Chronojump system. The repeated sprint ability (RSA) (5x30m) will be measure using light cells Chronojump with 25 seconds rest in-between.

The soccer agility drill with a ball will be measured using light cells Chronojump in order to evaluate the soccer technical skills, 24 hour after. Finally, Open-circuit spirometry will be utilized for assessment of maximal oxygen consumption (VO2max) using an automated online pulmonary gas exchange system via breath-by-breath analysis during a graded exercise testing on a treadmill. The ability to recover after repeated intense exercise will be evaluated through the YO-YO Intermittent Recovery test level 2 and YO-YO Intermittent Endurance test level 2. 96 hours after, the participants are going to perform one of the two speed endurance maintenance training session randomly in the field. The SEMT(1:1) session will include 1 set, 6 repetitions per set and the work to rest ratio will be 1:1. The SEMT(1:3) session will iclude 1 set, 6 repetitions per set and the work to rest ratio will be 1:3. During the sessions will be assessed the change in Heart rate using a heart rate monitor and the field activity will be recorded using a global positiong system (GPS). The blood lactate will be evaluated immediately after each session. The DOMS indicator in the knee flexors (KF) and extensors (KE) of both limbs will be evaluated immediately after, 1h, 2h, 3h, 24h, 48h, and 72 hours after each session. The isometric peak torque of the knee extensors will be evaluated at 65° in limbs, post and at 1h, 2h and 3h, hours after each session. Also the fatigue rate during maximal voluntary isometric contraction will be estimated through the percent drop of peak torque between the first and the last three seconds of a 10-secong maximal isometric contraction.

Blood samples will be collected at 24h, 48h, and 72 hours after sessions. The counter movement jump (CMJ) will be measured immediately after the session, at 1h, 2h, 3h, at 24h, 48h and 72 hours after session on a force platform 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 data for each leg. During the CMJ will be measured the jump height (cm), the ground reaction force (N), the peak and mean power (W/kg), the vertical stiffness (Kvert, N/m/kg) and the peak rate of force development (RFD, N/s), while at the same time will be evaluated the change in peak and mean normalized EMG during the eccentric and concentric phases of the counter movement jump, for the vastus lateralis (VL), biceps femoris (BF), gastrocnemius (GAS), and gluteus maximus (GM) muscles. Electromyography data will be collected wirelessly at 2.000 Hz using a Myon MA-320 EMG system. Also, the speed of 10m and 30m will be measured using light cells Chronojump system immediately after, at 24h, 48h and 72 hours after session. Finally the RSA test will be measured at 24h, 48h and 72 hours after sessions. Α 2 - week washout period will be adapted among trials. After, the participants will perform the process until they complete the trials.

Who can participate

Healthy volunteers accepted: Yes

Only the study team can determine whether someone qualifies for participation.

Inclusion criteria

  • Aged between 18 and 35 years
  • Active soccer players who participate on a competitive soccer level at least for 4 years(≥5 sessions per week ≥1 match per week)
  • Free of chronic diseases
  • Free of musculoskeletal injury
  • Participants should be non-smokers

Exclusion criteria

  • Musculoskeletal injury
  • Chronic disease
  • Use of alcohol, caffeine and any type of ergogenic supplements or medication before (≥ 6 months) and throughout the study.

Treatment and study plan

SEMT(1:1)

Other

Soccer trainning protocolo will be performed on an work to rest ratio 1:1 and the trainning volume will consist of 1 set and 6 repetitions per set

SEMT (1:3)

Other

Soccer trainning protocolo will be performed on an work to rest ratio 1:3 and the trainning volume will consist of 1 set and 6 repetitions per set

Primary outcomes

  1. Change in white blood cell count

    Time frame: At baseline, at 24, 48 and 72 hours post speed endurance maintenance protocols.

    White blood cell count will be measured using an automatic blood analyzer

  2. Change in Creatine kinase in blood

    Time frame: At baseline, at 24, 48 and 72 hours post speed endurance maintenance protocols.

    Creatine kinase will be measured in plasma

  3. Change in countermovement jump height

    Time frame: At baseline, post, 1, 2,3, 24, 48 and 72 hours post speed endurance maintenance protocols.

    Countermovement jump height will be measured using two force platforms at 1000Hz, with each foot in parallel on the two platforms providing a seperate yet time-synchronized measurement of the jump height for each leg

  4. Change in ground reaction force (GRF) during countermovement jump test

    Time frame: At baseline, at post, at 1, 2, 3, 24, 48 and 72 hours post speed endurance maintenance protocols.

    The ground reaction force will be measured using two force platforms at 1000Hz, with each foot in parallel on the two platforms providing a seperate yet time-synchronized measurement of the jump height for each leg

  5. Change in peak power during countermovement jump test

    Time frame: At baseline, post 1, 2, 3, 24, 48 and 72 hours post speed endurance maintenance protocols.

    The peak power will be measured using two force platforms at 1000Hz, with each foot in parallel on the two platforms providing a seperate yet time-synchronized measurement of the jump height for each leg

  6. Change in mean power during countermovement jump test

    Time frame: At baseline, post, 1, 2, 3, 24, 48 and 72 hours post speed endurance maintenance protocols.

    The mean power will be measured using two force platforms at 1000Hz, with each foot in parallel on the two platforms providing a seperate yet time-synchronized measurement of the jump height for each leg

  7. Change in vertical stifness during countermovement jump test

    Time frame: At baseline, post, 1, 2, 3, 24, 48 and 72 hours post speed endurance maintenance protocols.

    The vertical stifness will be measured using two force platforms at 1000Hz, with each foot in parallel on the two platforms providing a seperate yet time-synchronized measurement of the jump height for each leg

  8. Change in peak rate of force development during countermovement jump test

    Time frame: At baseline, post, 1, 2, 3, 24, 48 and 72 hours post speed endurance maintenance protocols.

    The peak rate of force development will be measured using two force platforms at 1000Hz, with each foot in parallel on the two platforms providing a seperate yet time-synchronized measurement of the jump height for each leg

  9. Change in peak normalized EMG during the eccentric and concentric phases of the countermovement jmp test

    Time frame: At baseline, post, 1, 2, 3, 24, 48 and 72 hours post speed endurance maintenance protocols.

    Electromyography data will be collected wirelessly at 2000Hz using a Myon MA-320 EMG system (Myon AG, Schwarzenberg, Switzerland) for the vastus lateralis (VL), biceps femoris (BF), gastrocnemius (GAS), and gluteus maximus (GM) muscles

  10. Change in mean normalized EMG during the eccentric and concentric phases of the countermovement jump test

    Time frame: At baseline, post, 1, 2, 3, 24, 48 and 72 hours post speed endurance maintenance protocols.

    Electromyography data will be collected wirelessly at 2000Hz using a Myon MA-320 EMG system (Myon AG, Schwarzenberg, Switzerland) for the vastus lateralis (VL), biceps femoris (BF), gastrocnemius (GAS), and gluteus maximus (GM) muscles

  11. Change in delayed onset of muscle soreness

    Time frame: At baseline, post, at 1, 2, 3, 24, 48 and 72 hours post speed endurance maintenance protocols.

    Muscle soreness will be assessed during palpation of the muscle belly and the distal region

  12. Change in repeated sprint ability (RSA)

    Time frame: At baseline, at 24, 48 and 72 hours post speed endurance maintenance protocols.

    5 x 30 m sprints will be performed with 25 seconds rest in-between

  13. Change in sprint time of 10m

    Time frame: At baseline, post, 24, 48 and 72 hours post speed endurance maintenance protocols.

    Sprint time will be assessed over a 10m distance using light cells.

  14. Change in sprint time of 30m

    Time frame: At baseline, post, 24, 48 and 72 hours post speed endurance maintenance protocols.

    Sprint time will be assessed over a 30m distance using light cells.

  15. Change in field activity during the speed-endurance mainetnance protocols

    Time frame: For 20 minutes during the speed endurance maintenance training day

    Field activity will be continuously recorded during both speed endurance maintenance protocols using global positioning system (GPS) technology

  16. Change in heart rate during the speed-endurance mainetnance protocols

    Time frame: For 20 minutes during the speed endurance maintenance training day

    Heart rate will be continuously recorded during both speed endurance maintenance protocols using heart rate monitors

  17. Change in isometric peak torque

    Time frame: At baseline, post, 1, 2, 3 and 24, 48 72 hours post speed endurance maintenance protocols.

    The isometric peak torque will be assessed on an isokinetic dyanmometer

  18. Change in fatigue index of maximal voluntary isometric contraction (MVIC) during 10 seconds

    Time frame: At baseline, post, 1, 2, 3 and 24, 48 72 hours post speed endurance maintenance protocols.

    Fatigue rate during MVIC will be estimated through the percent drop of peak torque between the first and the last three seconds of a 10-second maximal isometric contaction

  19. Change in blood lactate

    Time frame: At baseline and immediately post speed endurance maintenance protocols.

    The blood lactate will be measured using a lactate plus system

Secondary outcomes

  1. Body weight

    Time frame: At baseline

    Body weight will be measured on a beam balance with stadiometer

  2. Body height

    Time frame: At baseline

    Body height will be measured on a beam balance with stadiometer

  3. Maximal oxygen consumption (VO2max)

    Time frame: At baseline

    Maximal oxygen consumption will be measured by open circuit spirometry via breath by breath method

  4. Body fat

    Time frame: At baseline

    Body fat will be measured by using Dual-emission X-ray absorptiometry

  5. Lean body mass

    Time frame: At baseline

    Lean body mass will be measured by using Dual-emission X-ray absorptiometry

  6. Dietary intake

    Time frame: Over a 7 -day period at baseline

    Dietary intake will be assessed using 7 -day diet recalls

  7. Soccer Agility drill

    Time frame: At baseline

    The soccer agility drill will be assesed using light cells chronojump

  8. Yo-Yo Intermittent Recovery Test Level 2

    Time frame: At baseline

    The Yo-Yo Intermittent Recovery Test Level 2 is considered as a maximal aerobic endurance fitness test, involving running between markers placed 20 meters apart, at increasing speeds, until exhaustion.

  9. Yo-Yo Intermittent endurance Test Level 2

    Time frame: At baseline

    The Yo-Yo Intermittent endurance Test Level 2 evaluates an individual's aerobic endurance fitness, involving running between markers placed 20 meters apart, at increasing speeds, until exhaustion.

Sponsors and collaborators

Lead sponsor

University of Thessaly

Other

Registry information

Official study title

Recovery Kinetics After Speed-Εndurance Maintenance Training (SEMT) in Elite Male Soccer Players

Important dates

Study start
2021
Primary completion
2023
Study completion
2023
First posted
Feb 10, 2021
Registry last updated
Jan 30, 2024

OpenTrials presents study information sourced from ClinicalTrials.gov. The official registry record should be consulted for the latest information.

View the official ClinicalTrials.gov record (opens in a new tab)

This listing is for discovery and informational purposes only. It is not medical advice, does not guarantee that a study is recruiting, and does not determine eligibility. Contact the study team and a qualified healthcare professional when considering participation.

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