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bioRxiv · 10.1101/2022.02.10.479802

Gi/o protein-coupled receptor inhibition of beta-cell electrical excitability and insulin secretion depends on Na+/K+ ATPase activation

Abstract

Gi/o protein-coupled receptors (Gi/o-GPCRs) limit pancreatic islet insulin secretion by decreasing {beta}-cell Ca2+ entry, which is essential for maintenance of glucose homeostasis. However, the Gi/o-GPCR signaling mechanism that mediates inhibition of human islet hormone secretion has not been identified. Here we demonstrate that Gi/o-GPCRs cause hyperpolarization of the {beta}-cell membrane potential through activation of Na+/K+ ATPases (NKAs) in mouse and human islets. Stimulation of Gi/o-coupled somatostatin or 2-adrenergic receptors induced oscillations in {beta}-cell NKA activity, which resulted in islet Ca2+ fluctuations. Selective induction of {beta}-cell Gi/o signaling with a chemogenetic Gi/o-GPCR also activated NKAs and initiated islet Ca2+ oscillations, suggesting that {beta}-cell Gi/o-GPCRs tune pulsatile insulin secretion. Furthermore, intra-islet paracrine activation of {beta}-cell Gi/o-GPCR signaling and NKAs by {delta}-cell somatostatin secretion slowed Ca2+ oscillations, which decreased insulin secretion. Gi/o-GPCR-mediated oscillations in {beta}-cell membrane potential and Ca2+ were dependent on NKA phosphorylation by Src tyrosine kinases; an effect that was mimicked by stimulating islet insulin receptor tyrosine kinases. Whereas {beta}-cell NKA function was completely inhibited by cAMP-dependent PKA activation. Taken together, these data reveal that NKA-mediated hyperpolarization of {beta}-cell membrane potential serves as the primary and conserved mechanism for Gi/o-GPCR control of electrical excitability, Ca2+ handling, and insulin secretion.

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BibTeXRIS

Dickerson, M. T., Dadi, P. K., Zaborska, K. E., Nakhe, A. Y., Schaub, C. M., Dobson, J. R., Wright, N. M., Lynch, J. C., Scott, C. F., Jacobson, D. A.. 2022-02-10. Gi/o protein-coupled receptor inhibition of beta-cell electrical excitability and insulin secretion depends on Na+/K+ ATPase activation. https://doi.org/10.1101/2022.02.10.479802

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