Regulation of longevity by depolarization-induced activation of PLC-β-IP<sub>3</sub>R signaling in neurons.

Wong, Ching-On; Karagas, Nicholas E; Jung, Jewon; Wang, Qiaochu; Rousseau, Morgan A; Chao, Yufang; Insolera, Ryan; Soppina, Pushpanjali et al. · Proc Natl Acad Sci U S A · 2021

basic_science · Level V

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Abstract

Mitochondrial ATP production is a well-known regulator of neuronal excitability. The reciprocal influence of plasma-membrane potential on ATP production, however, remains poorly understood. Here, we describe a mechanism by which depolarized neurons elevate the somatic ATP/ADP ratio in <i>Drosophila</i> glutamatergic neurons. We show that depolarization increased phospholipase-Cβ (PLC-β) activity by promoting the association of the enzyme with its phosphoinositide substrate. Augmented PLC-β activity led to greater release of endoplasmic reticulum Ca<sup>2+</sup> via the inositol trisphosphate receptor (IP<sub>3</sub>R), increased mitochondrial Ca<sup>2+</sup> uptake, and promoted ATP synthesis. Perturbations that decoupled membrane potential from this mode of ATP synthesis led to untrammeled PLC-β-IP<sub>3</sub>R activation and a dramatic shortening of <i>Drosophila</i> lifespan. Upon investigating the underlying mechanisms, we found that increased sequestration of Ca<sup>2+</sup> into endolysosomes was an intermediary in the regulation of lifespan by IP<sub>3</sub>Rs. Manipulations that either lowered PLC-β/IP<sub>3</sub>R abundance or attenuated endolysosomal Ca<sup>2+</sup> overload restored animal longevity. Collectively, our findings demonstrate that depolarization-dependent regulation of PLC-β-IP<sub>3</sub>R signaling is required for modulation of the ATP/ADP ratio in healthy glutamatergic neurons, whereas hyperactivation of this axis in chronically depolarized glutamatergic neurons shortens animal lifespan by promoting endolysosomal Ca<sup>2+</sup> overload.

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