iPLA<sub>2</sub>β: A novel store-operated calcium entry modulator contributing to muscle dysfunction during denervation.

Xu, Hongyang; Bhaskaran, Shylesh; Brown, Jacob; de Sousa, Luis Gustavo Oliveira; Georgescu, Constantin; Duggan, Elizabeth; Kneuper, Kara; Bell, Ashley et al. · Sci Adv · 2026

basic_science · Level V

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Abstract

Sarcopenia, the age-related loss of skeletal muscle mass and strength, is a major cause of frailty and disability, with neuromuscular denervation as a key contributor. Bioactive lipid mediators, including lipid hydroperoxides and oxylipins, contribute to denervation-induced muscle atrophy and dysfunction. Here, we identify calcium-independent phospholipase A<sub>2</sub>β (iPLA<sub>2</sub>β) as a novel regulator of store-operated calcium ion (Ca<sup>2+</sup>) entry (SOCE), a critical process for maintaining Ca<sup>2+</sup> homeostasis via stromal interaction molecule 1 (STIM1) and Orai1 coupling in skeletal muscle. Using muscle-specific iPLA<sub>2</sub>β knockout (miPLA<sub>2</sub>βKO) mice, we show that iPLA<sub>2</sub>β interacts with STIM1-Orai1 coupling to modulate SOCE. Denervation elevates iPLA<sub>2</sub>β, hyperactivating SOCE and causing Ca<sup>2+</sup> overload through oxidative impairment of regulators such as SERCA. iPLA<sub>2</sub>β deletion normalizes SOCE, preserves Ca<sup>2+</sup> homeostasis, and protects against denervation-induced muscle mass (5%) and strength loss (50%). These findings reveal that iPLA<sub>2</sub>β may be a critical link between oxidative stress and Ca<sup>2+</sup> dysregulation and a promising target for mitigating muscle dysfunction during denervation.

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