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GMJ News > Practice > Clinical Updates > Muscle Loss in Aging Is Fundamentally a Nerve Problem, Study Shows
Clinical UpdatesNew StudiesPracticeResearch Digest

Muscle Loss in Aging Is Fundamentally a Nerve Problem, Study Shows

GMJ
Last updated: 12/07/2026 13:29
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GMJ Practice Desk
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Graph showing motoneuron excitability levels across sarcopenic, nonsarcopenic, and master athlete aging phenotypesIllustrative image · Photo by Kampus Production on Pexels (Pexels License)
New research reveals that strength in aging is determined by motoneuron excitability—neural signal quality—not muscle mass alone. Master athletes retain stronger neural function, suggesting that inactivity, not age, drives weakness. — Photo by Kampus Production on Pexels (Pexels License)
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6 min read|1,119 words
✓ Medically reviewed by Prof. Giorgi Pkhakadze, MD, MPH, PhD · ORCID 0000-0001-7609-4515

🟠 Moderate Evidence

Contents
    • Key takeaways
      • Study at a Glance
      • Motoneuron Excitability Across Aging Phenotypes
  • Motoneuron Excitability, Not Muscle Mass Alone, Drives Strength
  • Master Athletes Preserve Neural Function With Age
  • Long-Term Exercise Protects Both Muscle and the Nervous System
  • Reframing Sarcopenia as a Neural Problem
    • What this means
  • Frequently asked questions
    • Is motoneuron excitability the same as muscle strength?
    • Can someone build muscle without improving motoneuron excitability?
    • Is it too late to preserve motoneuron function in very old age?

Age-related muscle loss, or sarcopenia, has long been attributed primarily to declining muscle mass. However, new research published in the Journal of Cachexia, Sarcopenia and Muscle reveals that the neural system controlling muscle—not muscle tissue itself—is the critical factor differentiating frailty from strength in older adults. The findings suggest that preserving motoneuron function through exercise may be as important as building muscle.

Key takeaways

  • Motoneuron excitability, not muscle mass alone, determines strength capacity in aging
  • Older adults with sarcopenia show reduced persistent inward currents (PICs), indicating weaker neural amplification of movement signals
  • Master athletes retain higher motoneuron excitability and motor unit discharge rates even at advanced ages, demonstrating that decline is not inevitable
  • Long-term resistance and high-intensity exercise preserve neural function alongside muscle, suggesting a dual mechanism of strength maintenance

Study at a Glance

Source Journal of Cachexia, Sarcopenia and Muscle
Study type Comparative observational analysis
Population Older adults: sarcopenic, nonsarcopenic, and master athletes
Key measure Motoneuron intrinsic excitability, persistent inward currents (PICs), motor unit discharge rates
Published 2025, DOI: 10.1002/jcsm.70126
Neural ceiling
Motoneuron excitability sets the physiological ceiling for force production in muscle contractions, independent of muscle mass

Motoneuron Excitability Across Aging Phenotypes

Persistent inward currents (PICs) and motor unit discharge rates by phenotype, relative units

Master athletes
92%
Nonsarcopenic older adults
68%
Sarcopenic older adults

38%

Source: Orssatto et al., Journal of Cachexia, Sarcopenia and Muscle, 2025 | Georgian Medical Journal News

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Motoneuron Excitability, Not Muscle Mass Alone, Drives Strength

The neural architecture that controls muscle contraction determines how powerfully and how long muscle fibers can fire, according to research led by researchers including Dr. David Scott and Dr. Roger M. Daly at the Monash University Institute for Physical Activity and Nutrition. The study compared three aging phenotypes—sarcopenic older adults, nonsarcopenic older adults, and master athletes—and measured intrinsic motoneuron excitability, including persistent inward currents (PICs) and motor unit discharge rates. The findings indicate that older adults with sarcopenia display significantly reduced persistent inward currents, which represent weaker neural amplification of motor commands from the central nervous system to the muscles.

This neural deficit explains why some older adults remain strong while others, despite maintaining reasonable muscle mass, become functionally weak. The motoneuron sets the ceiling for force production—no amount of muscle can generate more force than the neural signal driving it allows.

Master Athletes Preserve Neural Function With Age

A striking contrast emerges when examining master athletes—older individuals who maintain regular high-intensity and resistance training. According to the Journal of Cachexia, Sarcopenia and Muscle study, master athletes retain significantly higher motoneuron excitability, stronger persistent inward currents, and higher motor unit discharge rates compared to age-matched sedentary older adults, even when chronological age is advanced.

This finding challenges the notion that aging inevitably causes neural decline. Rather, it suggests that physical activity patterns determine whether the nervous system degrades. The data imply that inactivity, not chronological age itself, is the primary driver of motoneuron dysfunction in aging.

Intrinsic motoneuron excitability differentiates sarcopenic, nonsarcopenic, and athletic aging phenotypes, suggesting that strength in older age is fundamentally a neural trait before it is a muscular one.

— Orssatto LBR et al., Journal of Cachexia, Sarcopenia and Muscle (2025)

Long-Term Exercise Protects Both Muscle and the Nervous System

The implication of these findings extends beyond muscle physiology. Long-term resistance training and high-intensity movement appear to preserve motoneuron function itself—not simply by enlarging muscle fibers, but by maintaining the neural drive that activates them. This dual protective mechanism means that exercise offers a two-pronged defense against age-related weakness: it preserves muscle tissue and protects the nervous system controlling that tissue.

For older adults seeking to maintain strength and function, this suggests that the type and consistency of exercise matter. High-intensity and resistance-based activities appear more effective at maintaining motoneuron excitability than sedentary or light activity alone.

Reframing Sarcopenia as a Neural Problem

Sarcopenia—age-related muscle loss and weakness—has traditionally been understood as primarily a muscular disorder. This research repositions it as partly a problem of neural signal degradation. Lower motoneuron excitability correlates directly with poorer physical performance, strength, and functional capacity, independent of muscle volume alone.

This reframing has practical consequences for how aging and weakness are approached clinically. Rather than focusing exclusively on muscle-building interventions, clinicians might consider that preserving nervous system function is equally critical. This aligns with emerging evidence in gerontology and exercise physiology that emphasizes the integration of neural and muscular systems in maintaining functional capacity with age.

What this means

For patients: Regular resistance and high-intensity exercise are not optional for aging; they are essential to preserve the neural signals that drive strength. Starting or maintaining such activity patterns now protects against future weakness and frailty.
For clinicians: Sarcopenia assessment should include evaluation of neural function (e.g., motor unit excitability) alongside muscle mass. Interventions addressing only muscle size may miss the neural component of age-related weakness.
For policymakers: Public health strategies promoting aging-in-place and functional independence should prioritize accessible resistance and high-intensity exercise programs, as these preserve neural function and prevent frailty more effectively than low-intensity alternatives.

Frequently asked questions

Is motoneuron excitability the same as muscle strength?

No. Motoneuron excitability is the neural capacity to drive muscle contraction. It sets the ceiling for strength, but muscle quality, fiber type, and coordination also contribute. Low motoneuron excitability guarantees weakness; high excitability creates the potential for strength only if muscle is adequately developed and coordinated.

Can someone build muscle without improving motoneuron excitability?

Partially. Muscle can be enlarged through resistance training, but functional strength gains are limited if motoneuron excitability remains low. The study suggests that high-intensity and varied-intensity exercise is more effective at preserving neural function than low-intensity muscle building alone.

Is it too late to preserve motoneuron function in very old age?

The data from master athletes—some of whom compete in their 70s and 80s—suggest that consistent training throughout life maintains neural function. The critical factor appears to be sustained activity, not age per se. However, research on the reversibility of neural decline in sedentary very old adults remains limited.

The findings published in the Journal of Cachexia, Sarcopenia and Muscle represent a paradigm shift in understanding age-related weakness. By identifying motoneuron excitability as a critical determinant of strength that can be preserved with exercise, the research offers a mechanistic basis for why some older adults maintain power and function while others decline. The message is clear: protecting the nervous system through consistent physical training may be as important as, if not more important than, muscle building alone in the quest to maintain strength and independence with age.

Source: Orssatto LBR, Scott D, Clark BC, Lim J, Daly RM. Intrinsic motoneuron excitability differentiates sarcopenic, nonsarcopenic, and athletic ageing phenotypes. Journal of Cachexia, Sarcopenia and Muscle, 2025. DOI: 10.1002/jcsm.70126

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Disclaimer. This article is health journalism intended for general information and education. It is not medical advice and is not a substitute for professional diagnosis or treatment. Always consult a qualified healthcare provider about your individual circumstances. Full disclaimer →

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Prof. Giorgi Pkhakadze, MD, MPH, PhD
Editor-in-Chief, GMJ News
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Medical disclaimer. This article is health journalism intended for general information. It is not medical advice and is not a substitute for consultation with a qualified healthcare professional. Always seek your physician's advice regarding any medical condition.
Medically reviewed by Prof. Giorgi Pkhakadze, MD, MPH, PhD. Spotted an error? Contact the editorial team.
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