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Recruiting NCT07717801

Effects of Diaphragmatic Breathing Retraining in Combat Sport Athletes With Dysfunctional Breathing Patterns

No phase Interventional Respiratory Muscle Function Athletic Performance Postural Balance

For patients and families

In plain language

An automatic summary of structured registry data. It is an orientation aid, not a substitute for the official protocol or a physician assessment.

What is being studied
The protocol lists: Diaphragmatic breathing training exercise, Usual training.
Who it may be relevant to
Registry conditions: Respiratory Muscle Function, Athletic Performance, Postural Balance. Basic parameters: 18 years — 50 years · All.
What needs checking
Age, condition and sex are only basic indicators. Prior treatment, laboratory values and other mandatory requirements appear in the eligibility criteria below.
Where it takes place
Taiwan
Next step
Save the trial, show it to the treating physician, and confirm current recruitment with the study center. Costs, documents and travel →
Official title

Dysfunctional Breathing Patterns, Diaphragmatic Function, Core Stability, and Postural Control in Combat Sport Athletes: Diaphragm-Centered Neuromuscular Control Perspective and Effects of Diaphragmatic Breathing Retraining

Overview

Combat sport athletes often need to maintain a guarded posture, stabilize the trunk, react quickly, and control balance during contact or unexpected movement. These demands may be related not only to strength and conditioning, but also to the coordination between breathing and postural control. The diaphragm is the main muscle for breathing and also contributes to trunk stability through its role in pressure regulation and deep core control. However, dysfunctional breathing patterns, such as upper-chest dominant breathing, reduced lower rib expansion, or poor coordination between the chest and abdomen, may interfere with this function. The purpose of this study is to examine dysfunctional breathing patterns in combat sport athletes and to investigate whether diaphragmatic breathing retraining can improve breathing patterns, diaphragm function, core stability, postural control, and sport-related performance. This study will first screen athletes from combat and non-combat sports to determine the prevalence of dysfunctional breathing. Combat sport athletes will then complete laboratory tests to examine the relationship between breathing pattern, posture, diaphragm function, core stability, and postural control. In the intervention part of the study, combat sport athletes with dysfunctional breathing will be randomly assigned to diaphragmatic breathing retraining plus usual training or usual training only. The study will compare the two groups to determine whether adding diaphragmatic breathing retraining provides additional benefits. The study will also examine whether the changes are maintained after training and whether baseline measures can help identify athletes who respond better to the program.

Detailed description

Combat sports place high demands on the neuromuscular system. Athletes must generate force, absorb impact, maintain balance, and respond to an opponent under rapidly changing conditions. Many combat sport athletes also use protective or guarded postures during training and competition. These postures may help with short-term stability, but they may also be associated with altered trunk control, reduced movement adaptability, and increased loading on the spine and surrounding tissues.

Breathing mechanics may be one factor related to these movement-control demands. The diaphragm is not only the primary muscle for inspiration, but also contributes to trunk stabilization. Through its interaction with the abdominal wall, pelvic floor, and deep spinal muscles, the diaphragm helps regulate intra-abdominal pressure and support postural control. When breathing is dominated by the upper chest or accessory muscles, the coordination between breathing and trunk stabilization may be less efficient.

Dysfunctional breathing has been reported in physically active and athletic populations, but its role in combat sport athletes is still not well understood. Most sport-related breathing studies have focused on respiratory muscle strength or endurance. Less attention has been given to breathing pattern normalization and the integration of breathing with postural control. For this reason, the present study focuses on dysfunctional breathing as a possible neuromuscular control issue rather than only a respiratory problem.

This study includes three main stages. In the first stage, athletes from combat and non-combat sports will be screened for dysfunctional breathing and postural characteristics. This stage will estimate the prevalence of dysfunctional breathing and compare breathing patterns between sport types. A subgroup of combat sport athletes will also complete laboratory-based testing to examine whether breathing pattern is associated with diaphragm function, posture, core stability, and postural control.

In the second stage, combat sport athletes with dysfunctional breathing will participate in an intervention study. Participants will first complete a single-session breathing correction assessment to examine immediate changes in breathing pattern and diaphragm function. They will then be randomly assigned to either diaphragmatic breathing retraining plus usual training or usual training only. The breathing retraining program will last 8 weeks and will progress from breathing correction in supported positions to breathing control in upright and core-demanding positions.

Assessments will be performed before the intervention, after the first breathing correction session, after the 8-week intervention, and at follow-up. The assessments will include breathing pattern evaluation, ultrasound assessment of diaphragm function, respiratory muscle strength testing, movement analysis, force plate testing, muscle activity recording, and functional sport performance tests. These tests are used to examine whether changes in breathing are accompanied by changes in trunk control, balance responses, and sport-related function.

In the third stage, the study will explore why some athletes improve more than others. Athletes who receive diaphragmatic breathing retraining will be classified as responders or non-responders based on changes in breathing pattern. Baseline breathing severity, diaphragm function, posture, core stability, postural control, and low back pain status will be examined as possible factors related to training response.

Overall, this study aims to clarify the relationship between breathing pattern and movement control in combat sport athletes. The findings may help determine whether diaphragmatic breathing retraining can be used as a practical strategy to improve breathing control, trunk stability, postural control, and sport-related performance in athletes with dysfunctional breathing.

Interventions

  • Other Diaphragmatic breathing training exercise
    Participants will complete one session of diaphragmatic breathing correction. During the session, verbal instruction, manual facilitation, and corrective feedback will be used to guide participants toward a more diaphragmatic breathing pattern. Participants will be instructed to breathe with relaxed shoulders and neck, increase lower rib cage and abdominal expansion, and minimize upper-chest dominant breathing. The intervention is designed to examine the immediate effects of breathing correction
  • Other Usual training
    Participants continue their regular sport-specific training schedule. They receive non-specific limb stretching and general exercise education but no structured breathing exercises or breathing instruction during the study period.

Primary outcome measures

  • Breathing Pattern_ Total Faulty Breathing Scale (TFBS) Score [Time frame: Baseline (Day 1), Day 1 (immediately after first session), Week 8 (post-intervention), Week 16 (8 weeks after intervention completion)]
  • Trunk Flexor Endurance _ McGill Curl-Up Hold Test [Time frame: Baseline (Day 1), Week 8 (post-intervention), Week 16 (8 weeks after intervention completion)]
  • Back Extensor Endurance _Biering-Sørensen Test [Time frame: Baseline (Day 1), Week 8 (post-intervention), Week 16 (8 weeks after intervention completion)]
  • Movement Speed_10-Meter Sprint Time [Time frame: Baseline (Day 1), Week 8 (post-intervention), Week 16 (8 weeks after intervention completion)]
  • Agility _ T-Test Time [Time frame: Baseline (Day 1), Week 8 (post-intervention), Week 16 (8 weeks after intervention completion)]
  • Visual Motor Reaction Time _ BlazePod System [Time frame: Baseline (Day 1), Week 8 (post-intervention), Week 16 (8 weeks after intervention completion)]
  • Dynamic Balance _ Y Balance Test Composite Score [Time frame: Baseline (Day 1), Week 8 (post-intervention), Week 16 (8 weeks after intervention completion)]
  • Reactive Postural Control - Time to Stabilization [Time frame: Baseline (Day 1), Week 8 (post-intervention), Week 16 (8 weeks after intervention completion)]
  • Reactive Postural Control - Trunk/Pelvis Angular Displacement [Time frame: Baseline (Day 1), Week 8 (post-intervention), Week 16 (8 weeks after intervention completion)]
  • Reactive Postural Control - Trunk/Pelvis Angular Velocity [Time frame: Baseline (Day 1), Week 8 (post-intervention), Week 16 (8 weeks after intervention completion)]

Eligibility criteria

Inclusion criteria

  • Aged between 18 and 50 years.
  • Currently participating regularly in combat sports, such as taekwondo, boxing, judo, karate, jiu-jitsu, or similar sports, with at least 2 years of training experience.
  • Training at least 3 times per week.

Exclusion criteria

  • Current or major musculoskeletal injury within the past year that may affect testing or training performance.
  • History of major thoracic, abdominal, or spinal surgery.
  • Known cardiopulmonary diseases, such as asthma, chronic obstructive pulmonary disease, or heart disease; neurological disorders; vestibular dysfunction; or other conditions that may affect balance.
  • Current or recent pregnancy.
  • Previous participation in breathing training or respiratory therapy, or current use of medications that may affect respiratory or neuromuscular function.
  • Inability to complete ultrasound assessment, motion analysis, or exercise testing.
  • Having a subordinate relationship or conflict of interest with the principal investigator or co-investigators, such as being a supervised student, research assistant, employee, or other related personnel.

Criteria are shown verbatim from the registry (in English). Final eligibility is always assessed by the study center.

Healthy volunteers: No

Study design

Allocation
Randomized
Model
Parallel assignment
Masking
Open label
Primary purpose
Treatment

Study locations

Taiwan · 1 center
  • Department of Physical Therapy, National Cheng Kung University, — Tainan

Identifiers

NCT: NCT07717801 · NCKU_Combat_Diaphragm

Primary sources (government registries)

View this study on ClinicalTrials.gov ↗