An ALLO-1–associated network links mitochondrial quality control to functional recovery in structurally compromised muscle

Abstract Muscle function can recover before damaged contractile structures are fully repaired, but the mechanisms enabling this recovery remain poorly understood. Using a temperature-sensitive Caenorhabditis elegans model of UNC-45 dysfunction, in which impaired myosin chaperoning triggers muscle proteotoxic stress and reversible paralysis, we show that coordinated movement recovers while sarcomere disorganisation persists. Quantitative proteomics identified ALLO-1, a selective-autophagy receptor previously characterised for paternal organelle clearance during embryogenesis, as induced during recovery from UNC-45dependent muscle stress. Functional and proteomic analyses revealed an ALLO-1–associated regulatory network comprising IKKE-1, SIP-1, DIM-1 and CAR-1 that modulates mitochondrial stress responses and muscle recovery. Loss of ALLO-1 or its associated factors altered mitochondrial homoeostasis and delayed functional recovery, whereas muscle-specific ALLO-1a restoration improved recovery, preserved mitochondrial network integrity, and modulated mitochondrial turnover despite reduced respiratory capacity. These findings identify ALLO-1 as a regulator of mitochondrial stress adaptation that enables functional recovery before completing structural repair.

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Journal
Communications Biology
Published
2026-10-06
DOI
https://doi.org/10.1038/s42003-026-11093-z
Primary Topic
Autophagy in Disease and Therapy
Type
article
Field-Weighted Citation Impact
0.00
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article

An ALLO-1–associated network links mitochondrial quality control to functional recovery in structurally compromised muscle

Lilla Biriczová, Pankaj Singh Thapa, Remigiusz Adam Serwa, Natalia A. Szulc et al.
Communications Biology
Autophagy in Disease and Therapy
article

An ALLO-1–associated network links mitochondrial quality control to functional recovery in structurally compromised muscle

Lilla Biriczová, Pankaj Singh Thapa, Remigiusz Adam Serwa, Natalia A. Szulc, Anwesha Sarkar, Wojciech Pokrzywa
article en

Abstract

Abstract Muscle function can recover before damaged contractile structures are fully repaired, but the mechanisms enabling this recovery remain poorly understood. Using a temperature-sensitive Caenorhabditis elegans model of UNC-45 dysfunction, in which impaired myosin chaperoning triggers muscle proteotoxic stress and reversible paralysis, we show that coordinated movement recovers while sarcomere disorganisation persists. Quantitative proteomics identified ALLO-1, a selective-autophagy receptor previously characterised for paternal organelle clearance during embryogenesis, as induced during recovery from UNC-45dependent muscle stress. Functional and proteomic analyses revealed an ALLO-1–associated regulatory network comprising IKKE-1, SIP-1, DIM-1 and CAR-1 that modulates mitochondrial stress responses and muscle recovery. Loss of ALLO-1 or its associated factors altered mitochondrial homoeostasis and delayed functional recovery, whereas muscle-specific ALLO-1a restoration improved recovery, preserved mitochondrial network integrity, and modulated mitochondrial turnover despite reduced respiratory capacity. These findings identify ALLO-1 as a regulator of mitochondrial stress adaptation that enables functional recovery before completing structural repair.

Communications Biology
International Institute of Molecular and Cell Biology (PL), Polish Academy of Learning (PL), Polish Academy of Sciences (PL)
Openalex Percentile: Top 11%
Autophagy in Disease and Therapy
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An ALLO-1–associated network links mitochondrial quality control to functional recovery in structurally compromised muscle — Lilla Biriczová, Pankaj Singh Thapa, et al. · Communications Biology (2026) | TGRS Research Map | TGRS