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Regulation of store-operated Ca2+ entry by IP3 receptors independent of their ability to release Ca2.


ABSTRACT: Loss of endoplasmic reticular (ER) Ca2+ activates store-operated Ca2+ entry (SOCE) by causing the ER localized Ca2+ sensor STIM to unfurl domains that activate Orai channels in the plasma membrane at membrane contact sites (MCS). Here, we demonstrate a novel mechanism by which the inositol 1,4,5 trisphosphate receptor (IP3R), an ER-localized IP3-gated Ca2+ channel, regulates neuronal SOCE. In human neurons, SOCE evoked by pharmacological depletion of ER-Ca2+ is attenuated by loss of IP3Rs, and restored by expression of IP3Rs even when they cannot release Ca2+, but only if the IP3Rs can bind IP3. Imaging studies demonstrate that IP3Rs enhance association of STIM1 with Orai1 in neuronal cells with empty stores; this requires an IP3-binding site, but not a pore. Convergent regulation by IP3Rs, may tune neuronal SOCE to respond selectively to receptors that generate IP3.

SUBMITTER: Chakraborty P 

PROVIDER: S-EPMC10406432 | biostudies-literature | 2023 Jul

REPOSITORIES: biostudies-literature

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Regulation of store-operated Ca<sup>2+</sup> entry by IP<sub>3</sub> receptors independent of their ability to release Ca<sup>2</sup>.

Chakraborty Pragnya P   Deb Bipan Kumar BK   Arige Vikas V   Musthafa Thasneem T   Malik Sundeep S   Yule David I DI   Taylor Colin W CW   Hasan Gaiti G  

eLife 20230719


Loss of endoplasmic reticular (ER) Ca<sup>2+</sup> activates store-operated Ca<sup>2+</sup> entry (SOCE) by causing the ER localized Ca<sup>2+</sup> sensor STIM to unfurl domains that activate Orai channels in the plasma membrane at membrane contact sites (MCS). Here, we demonstrate a novel mechanism by which the inositol 1,4,5 trisphosphate receptor (IP<sub>3</sub>R), an ER-localized IP<sub>3</sub>-gated Ca<sup>2+</sup> channel, regulates neuronal SOCE. In human neurons, SOCE evoked by pharmaco  ...[more]

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