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Scientists uncover two neuronal circuits orchestrating muscle autophagy

07.03.26 | Chinese Academy of Sciences Headquarters
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Autophagy is the process by which cells remove damaged proteins, recycle worn-out organelles (e.g., mitochondria), clear cellular waste, and provide nutrients during stress. Autophagy is essential for muscles because they are constantly under mechanical stress. If autophagy is too low, damaged proteins accumulate and muscle gradually weakens. If it is too high, muscle tissue can begin breaking itself down.

Disruption of autophagy has been implicated in a wide range of muscle disorders, and abnormal muscle autophagy is frequently observed in neurogenic diseases. However, the neuronal signaling pathways that control this process had previously remained largely unknown.

Now, researchers led by Prof. ZHANG Hong from the Institute of Biophysics of the Chinese Academy of Sciences have identified two parallel neuronal circuits that regulate the autophagy-lysosome pathway in the body wall muscle of Caenorhabditis elegans , a tiny nematode worm. Their research has uncovered a previously unknown mechanism by which the worm’s nervous system maintains muscle homeostasis.

The findings, published in Developmental Cell on June 29, provide new insights into neuron-to-muscle communication and may inform future therapies for neurogenic muscle disorders such as amyotrophic lateral sclerosis (ALS) and spinal muscular atrophy (SMA).

In this study, the researchers found that the first neuronal circuit is formed by electrical synapses between AVA interneurons and A-type motor neurons (A-MNs), which use the proteins UNC-7/UNC-9 to form synaptic gap junctions. Loss of these electrical synapses promotes the release of the neuropeptides NLP-9, NLP-12, and FLP-18. Among them, NLP-12 and FLP-18 activate the NPR-5/Gαq–EGL-30 signaling pathway in body wall muscle, increasing intracellular Ca 2+ levels.

The second neuronal circuit originates from ASI sensory neurons, where the TGF-β-like signaling molecule DAF-7 activates the canonical TGF-β signaling pathway in the body wall muscle to regulate intracellular Ca 2+ homeostasis.

Together, these two parallel neuronal pathways converge on a Ca 2+ –calpain–lysosome signaling cascade to maintain autophagic activity in the body wall muscle of C. elegans, thereby preserving muscle structure and function.

The researchers also found that unc-7 and daf-7 mutants exhibited severe disruption of muscle fiber organization and significantly reduced swimming ability, both characteristic features of myopathy. Genetic restoration of the affected signaling pathways markedly alleviated autophagy defects and restored muscle structural integrity and function.

The study uncovers a previously unrecognized mechanism of neuron-to-muscle communication and offers new insights into the pathogenesis of neurogenic myopathies, potentially opening new avenues for therapeutic development.

Developmental Cell

10.1016/j.devcel.2026.06.001

Experimental study

Not applicable

Two parallel neuronal circuits involving electrical synapse and DAF-7/TGFβ signaling regulate muscle autophagy in C. elegans

29-Jun-2026

Keywords

Article Information

Contact Information

ZHANG Hong
Institute of Biophysics
hongzhang@ibp.ac.cn

Source

This article is based on a news release from Chinese Academy of Sciences Headquarters. BrightSurf curates and republishes science news from research institutions worldwide; the original release is linked below.

How to Cite This Article

APA:
Chinese Academy of Sciences Headquarters. (2026, July 3). Scientists uncover two neuronal circuits orchestrating muscle autophagy. Brightsurf News. https://www.brightsurf.com/news/8Y4YY7ZL/scientists-uncover-two-neuronal-circuits-orchestrating-muscle-autophagy.html
MLA:
"Scientists uncover two neuronal circuits orchestrating muscle autophagy." Brightsurf News, Jul. 3 2026, https://www.brightsurf.com/news/8Y4YY7ZL/scientists-uncover-two-neuronal-circuits-orchestrating-muscle-autophagy.html.