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Completed

NCT Number: NCT07043595

H-Reflex Suppression by Bone Myoregulation Reflex During Mechanical Loading in Standing Humans

This study aims to investigate how standing posture and mechanical loading affect reflex responses in the lower limb. Specifically, it focuses on the H-reflex-a type of spinal cord reflex-and how it changes during quiet standing and whole-body vibration. Ten healthy adult volunteers will participate. Researchers will record electrical responses from the calf muscle (soleus) while participants stand still or are exposed to gentle vibration. The goal is to better understand how the nervous system and skeletal system interact in regulating balance and movement.

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Key information

Age range

20 year–45 year

Sex eligibility

All sexes

Study type

Interventional

Phase

Not applicable

Primary location

Istanbul Physical Medicine and Rehabilitation Training and Research Hospital

Istanbul, Turkey (Türkiye)

About this study

This study investigates the neural mechanisms responsible for suppression of the H-reflex-a spinal monosynaptic reflex-during mechanical loading in the standing position. Previous research has shown that H-reflex amplitude decreases with increasing postural demand, such as during walking or standing compared to lying down. One hypothesis suggests that this suppression may be mediated not only by vestibular and cutaneous afferents, but also by a bone-derived reflex mechanism called the Bone Myoregulation Reflex (BMR).

In this study, 10 healthy adult volunteers will undergo H-reflex measurements while standing in various loading conditions, including quiet standing and during whole-body vibration (WBV). Participants will stand with one foot isolated from vibration while the other foot is on a vibrating platform. H-reflexes will be recorded from the soleus muscle using standard surface electromyography.

The primary aim is to determine whether BMR contributes to H-reflex suppression during loading. The findings may provide insight into the interaction between skeletal loading and spinal reflex modulation, with potential relevance to balance, gait, and rehabilitation science.

Who can participate

Healthy volunteers accepted: Yes

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

Inclusion criteria

  • Healthy adults aged 20 to 45 years
  • Able to stand independently for at least 10 minutes
  • No known neurological, orthopedic, or balance disorders
  • Willingness to participate and provide informed consent

Exclusion criteria

  • History of spinal cord injury, peripheral neuropathy, or muscle disease
  • Recent lower limb surgery or musculoskeletal trauma
  • Current use of medications affecting neuromuscular function
  • Pregnancy
  • Any contraindications to exposure to mechanical vibration

Treatment and study plan

whole-body vibration (WBV)

Procedure

Participants will stand quietly in an upright position while whole-body vibration (WBV) is applied through a vibration platform. The vibration stimulus is delivered while the participant's left foot remains on the vibration surface and the right foot is elevated or isolated. H-reflex recordings are taken from the soleus muscle during the procedure to assess spinal reflex modulation due to mechanical loading.

Other names: WBV

Primary outcomes

  1. H-reflex Amplitude

    Time frame: Day 1 (single-session, during each experimental condition)

    The amplitude of the H-reflex recorded from the soleus muscle, evoked at 15% Mmax stimulation level, will be measured during each condition (quiet standing, one-leg stance, and whole-body vibration). The primary aim is to assess changes in spinal excitability due to mechanical loading.

Secondary outcomes

  1. Background EMG Activity

    Time frame: Day 1 (450 ms window prior to stimulation)

    Background electromyographic activity of the soleus muscle will be evaluated over a 450 ms window prior to stimulation to ensure muscle quiescence and verify that changes in reflex amplitude are not due to background activity.

Sponsors and collaborators

Lead sponsor

Istanbul Physical Medicine Rehabilitation Training and Research Hospital

Other Gov

Registry information

Official study title

Neuronal Mechanisms Underlying H-Reflex Suppression During Mechanical Loading: The Role of Bone Myoregulation Reflex in Standing Humans

Acronym: BMR-HREF

Important dates

Study start
2025
Primary completion
2025
Study completion
2025
First posted
Jun 29, 2025
Registry last updated
Sep 4, 2025

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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