Abstract / Summary
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.