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Zamponi, G. W.

Publications and source records attributed to Zamponi, G. W..

2 recordsLinked to original sources

Effect of ORL-1 on Cav1.2 calcium channels

Cav1.2 is an L-type voltage-gated Ca2+ channel (VGCC) that supports Ca2+ influx in response to membrane depolarization. Ca2+ entering via Cav1.2 alters gene expression, activates Ca2+-dependent enzymes and has been implicated in synaptic plasticity. ORL-1 is a Gi/o-coupled G protein-coupled receptor (GPCR) that is expressed in the peripheral and central nervous systems. Both Cav1.2 and ORL-1 are expressed in the hippocampus, where they have been implicated in learning and memory. It is well-documented that ORL-1 interacts with another VGCC, Cav2.2. However, less is known about potential interactions between Cav1.2 and ORL-1. Here, we examine the interplay between Cav1.2 (Cav1c, Cav2{delta}-1, Cav{beta}1b) and ORL-1 co-expressed in tsA-201 cells by using biochemical, electrophysiological and confocal imaging analysis. Co-immunoprecipitations revealed that ORL-1 independently interacts with Cav1c and Cav2{delta}-1 subunits of the Cav1.2 channel complex. Electrophysiological recordings revealed that co-expression with ORL-1 reduced Cav1.2 peak current density without altering its biophysical properties. Acute perfusion with the ORL-1 receptor agonist nociceptin (1 {micro}M) did not alter Cav1.2 current density. Confocal imaging experiments revealed that ORL-1 significantly decreases Cav1.2 plasma membrane expression by disrupting forward trafficking. Interestingly, ORL-1 did not affect Cav1.2 endocytosis. Overall, our results demonstrate a previously unrecognized interaction between ORL-1 and Cav1.2 that alters Cav1.2 membrane expression without affecting biophysical properties.

neuroscience↗

L-type channel voltage-dependent facilitation results from asymmetric π-H and π-π quadrangle interactions at DI-DII domains

Voltage-dependent facilitation (VDF) is a unique phenomenon observed in L-type voltage-gated calcium (CaV) channels, in which depolarized prepulse voltages increase inward current by several fold, contributing to neuronal firing, neurotransmitter release, cardiac automaticity, and muscle contraction. Despite three decades of research, the molecular origin and biophysical mechanisms underlying VDF in L-type (CaV1.1-CaV1.4) channels remain elusive. A serendipitous observation that solutions stored in polypropylene tubes eliminated CaV1.2 and CaV1.3 L-type channel VDF led us to identify the leachable 2,4-di-tert-butylphenol (2,4-DTBP) as a selective VDF inhibitor. Docking and molecular dynamics simulations of 2,4-DTBP revealed a previously unreported {pi}-H and {pi}-{pi} interdomain quadrangle interaction, asymmetrically positioned at the DI-DII pore-domain (PD) interface of L-type channels. Point mutagenesis disrupted these quadrangle interactions and abolished the VDF, as confirmed by whole-cell and single-channel recordings of CaV1.2. Remarkably, introducing this {pi}-H and {pi}-{pi} quadrangle interaction into the DIIS6 segment of non-VDF-displaying CaV2.1 channels induced robust VDF. In conclusion, this study provides the first molecular evidence for the VDF endpoint: L-type channel-specific interdomain quadrangle interactions asymmetrically positioned at the DI-DII PD interface.

biophysics↗