β-cell deletion of the PKm1 and PKm2 isoforms of pyruvate kinase in mice reveals their essential role as nutrient sensors for the K<sub>ATP</sub> channel.

Foster, Hannah R; Ho, Thuong; Potapenko, Evgeniy; Sdao, Sophia M; Huang, Shih Ming; Lewandowski, Sophie L; VanDeusen, Halena R; Davidson, Shawn M et al. · Elife · 2022

basic_science · Level V

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Abstract

Pyruvate kinase (PK) and the phosphoenolpyruvate (PEP) cycle play key roles in nutrient-stimulated K<sub>ATP</sub> channel closure and insulin secretion. To identify the PK isoforms involved, we generated mice lacking β-cell PKm1, PKm2, and mitochondrial PEP carboxykinase (PCK2) that generates mitochondrial PEP. Glucose metabolism was found to generate both glycolytic and mitochondrially derived PEP, which triggers K<sub>ATP</sub> closure through local PKm1 and PKm2 signaling at the plasma membrane. Amino acids, which generate mitochondrial PEP without producing glycolytic fructose 1,6-bisphosphate to allosterically activate PKm2, signal through PKm1 to raise ATP/ADP, close K<sub>ATP</sub> channels, and stimulate insulin secretion. Raising cytosolic ATP/ADP with amino acids is insufficient to close K<sub>ATP</sub> channels in the absence of PK activity or PCK2, indicating that K<sub>ATP</sub> channels are primarily regulated by PEP that provides ATP via plasma membrane-associated PK, rather than mitochondrially derived ATP. Following membrane depolarization, the PEP cycle is involved in an 'off-switch' that facilitates K<sub>ATP</sub> channel reopening and Ca<sup>2+</sup> extrusion, as shown by PK activation experiments and β-cell PCK2 deletion, which prolongs Ca<sup>2+</sup> oscillations and increases insulin secretion. In conclusion, the differential response of PKm1 and PKm2 to the glycolytic and mitochondrial sources of PEP influences the β-cell nutrient response, and controls the oscillatory cycle regulating insulin secretion.

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