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Exercise Training Effects on Muscle Function in Adults With Mitochondrial Myopathy

Deciphering Muscle-Nerve Communication Via Mitochondrial Myopathy Insights: Exploring the Effects of Exercise Training

Status
Recruiting
Phases
Unknown
Study type
Interventional
Source
ClinicalTrials.gov
Registry ID
NCT07450690
Acronym
MM-EX
Enrollment
22
Registered
2026-03-05
Start date
2026-01-09
Completion date
2030-10-30
Last updated
2026-03-05

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

Conditions

Mitochondrial Diseases, Mitochondrial Myopathy

Keywords

Exercise training, Mitochondrial function, Skeletal Muscle, Neuromuscular Junction, Muscle Plasticity

Brief summary

The goal of this observational study is to learn how exercise training affects molecular processes in skeletal muscle in adults with mitochondrial myopathy, compared with healthy adults. The main questions it aims to answer are: * How does exercise training affect mitochondrial activity and energy production pathways in skeletal muscle in people with mitochondrial myopathy? * How does exercise training affect molecular signals related to muscle growth, stress responses, and muscle-nerve communication in people with mitochondrial myopathy? Researchers will compare the trained leg to the untrained leg within the same participant, and also compare responses between participants with mitochondrial myopathy and healthy control participants, to see how molecular responses to exercise differ between groups. The participants will: * Complete a 3-4-week supervised exercise training program using one leg. * Undergo muscle biopsies from both the trained and untrained leg. * Complete basic muscle strength and physical function tests.

Detailed description

Mitochondrial dysfunction is a central contributor to skeletal muscle weakness, metabolic dysregulation, and reduced physical capacity in mitochondrial myopathies. Defects in mitochondrial oxidative phosphorylation impair energy production and trigger maladaptive cellular stress responses, contributing to progressive muscle deterioration. While structured exercise training has been shown to improve mitochondrial oxidative capacity and functional performance in individuals with mitochondrial myopathy, the cellular and molecular pathways driving these adaptations are not fully defined. This study employs a within-subject, parallel-group, unilateral exercise training model to examine exercise-induced adaptations in skeletal muscle from adults with mitochondrial myopathy and matched healthy controls. Participants undergo a 3-4-week supervised unilateral aerobic interval training program consisting of 10 sessions, with the trained leg randomized and the contralateral leg serving as an internal untrained control. This design increases statistical power and allows direct comparison of trained versus untrained muscle within the same individual. Comprehensive phenotyping is conducted before the intervention, including assessments of muscle strength, functional performance, body composition, physical activity, and maximal oxygen uptake. Skeletal muscle biopsies obtained from both legs following the intervention enable detailed evaluation of mitochondrial respiratory function, mitochondrial morphology, neuromuscular junction structure, protein synthesis, signaling pathways, and unbiased multi-omics analyses (proteomics, phosphoproteomics, metabolomics, lipidomics, and transcriptomics). By integrating physiological, molecular, and structural outcomes, this study seeks to elucidate mechanisms by which exercise training may partially reverse mitochondrial and neuromuscular defects in mitochondrial myopathy and establish exercise as a targeted therapeutic strategy for mitochondrial dysfunction.

Interventions

BEHAVIORALUnilateral high-intensity interval training (HIIT)

Participants will undergo ten sessions of HIIT of the leg randomized to the intervention while the inactive leg serves as the control leg

Sponsors

University of Copenhagen
Lead SponsorOTHER
Rigshospitalet, Denmark
CollaboratorOTHER

Study design

Allocation
RANDOMIZED
Intervention model
PARALLEL
Primary purpose
BASIC_SCIENCE
Masking
NONE

Intervention model description

In a within-subject parallel-group longitudinal design, individuals with mitochondrial myopathy as well as matched controls sustain an exercise training intervention with one leg, while the contralateral leg serves as an inactive control.

Eligibility

Sex/Gender
ALL
Age
18 Years to No maximum
Healthy volunteers
Yes

Inclusion criteria

Eligibility criteria for Mitochondrial Myopathy-group: Inclusion Criteria * Known mtDNA or nuclear (nDNA) mutations * Age above or equal to 18 years

Exclusion criteria

* Medical conditions which deem the MM patient unfit to complete the study * Current use of medications known to interact with outcome measures. (see below) * Pregnancy * The participant is for any other reason unlikely to complete the study Inclusion Criteria for healthy controls * Age above or equal to 18 years

Design outcomes

Primary

MeasureTime frameDescription
Muscle mitochondrial respiration24-72 hours after final training sessionMitochondrial O2 flux is measured by high-resolution respirometry in permeabilized fibers from muscle biopsy samples after either exercise or ususal physical activity
Muscle mitochondrial reactive oxygen species (ROS) production24-72 hours after final training sessionMitochondrial H2O2 emission rates are measured by high-resolution fluorometry in permeabilized fibers from muscle biopsy samples after either exercise or ususal physical activity

Secondary

MeasureTime frameDescription
Muscle strength and enduranceAt first, fifth and tenth training sessionMeasured by an incremental one-legged test.
Muscle structure and neuromuscular junction morphology24-72 hours after final training sessionMeasured by histology and TEM from muscle biopsy specimens taken from both trained and untrained leg
Muscle integrated stress responses, growth and metabolic signaling24-72 hours after final training sessionMeasured by immunoblotting and Real-Time PCR in muscle biopsies from trained and untrained leg
Body and leg compositionBaseline and 24-72 hours after final training sessionas measured by whole-body DXA scanning

Countries

Denmark

Contacts

CONTACTTue L Nielsen, MD
tue.leth.nielsen.01@regionh.dk+45 3545 8748
CONTACTLykke Sylow, Ass.prof
lykkesylow@sund.ku.dk

Outcome results

None listed

Source: ClinicalTrials.gov · Data processed: Mar 6, 2026