Kv2.1 mediates spatial and functional coupling of L-type calcium channels and ryanodine receptors in mammalian neurons.

Vierra, Nicholas C; Kirmiz, Michael; van der List, Deborah; Santana, L Fernando; Trimmer, James S · Elife · 2019

basic_science · Level V

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Abstract

The voltage-gated K<sup>+</sup> channel Kv2.1 serves a major structural role in the soma and proximal dendrites of mammalian brain neurons, tethering the plasma membrane (PM) to endoplasmic reticulum (ER). Although Kv2.1 clustering at neuronal ER-PM junctions (EPJs) is tightly regulated and highly conserved, its function remains unclear. By identifying and evaluating proteins in close spatial proximity to Kv2.1-containing EPJs, we discovered that a significant role of Kv2.1 at EPJs is to promote the clustering and functional coupling of PM L-type Ca<sup>2+</sup> channels (LTCCs) to ryanodine receptor (RyR) ER Ca<sup>2+</sup> release channels. Kv2.1 clustering also unexpectedly enhanced LTCC opening at polarized membrane potentials. This enabled Kv2.1-LTCC-RyR triads to generate localized Ca<sup>2+</sup> release events (<i>i.e.</i>, Ca<sup>2+</sup> sparks) independently of action potentials. Together, these findings uncover a novel mode of LTCC regulation and establish a unique mechanism whereby Kv2.1-associated EPJs provide a molecular platform for localized somatodendritic Ca<sup>2+</sup> signals in mammalian brain neurons.

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