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Updated: Jul 6, 2025

Determination of the Relative Cell Surface and Total Expression of Recombinant Ion Channels Using Flow Cytometry
Published on: September 28, 2016
Asymmetric contribution of a selectivity filter gate in triggering inactivation of CaV1.3 channels
Pedro J Del Rivero Morfin1, Audrey L Kochiss1, Klaus R Liedl2
1Department of Physiology and Cellular Biophysics, Columbia University, New York, NY, USA.
Abstract:
Voltage-dependent and Ca2+-dependent inactivation (VDI and CDI, respectively) of CaV channels are two biologically consequential feedback mechanisms that fine-tune Ca2+ entry into neurons and cardiomyocytes. Although known to be initiated by distinct molecular events, how these processes obstruct conduction through the channel pore remains poorly defined. Here, focusing on ultrahighly conserved tryptophan residues in the interdomain interfaces near the selectivity filter of CaV1.3, we demonstrate a critical role for asymmetric conformational changes in mediating VDI and CDI. Specifically, mutagenesis of the domain III-IV interface, but not others, enhanced VDI. Molecular dynamics simulations demonstrate that mutations in distinct selectivity filter interfaces differentially impact conformational flexibility. Furthermore, mutations in distinct domains preferentially disrupt CDI mediated by the N- versus C-lobes of CaM, thus uncovering a scheme of structural bifurcation of CaM signaling. These findings highlight the fundamental importance of the asymmetric arrangement of the pseudotetrameric CaV pore domain for feedback inhibition.
Insights
Voltage-dependent and Ca2+-dependent inactivation in CaV channels are regulated by asymmetric conformational changes. These changes, particularly at the domain III-IV interface, impact channel pore conduction and CaM signaling, revealing crucial feedback mechanisms.
Area of Science:
- Molecular and Cellular Biology
- Biophysics
- Neuroscience
Background:
- Voltage-dependent inactivation (VDI) and Ca2+-dependent inactivation (CDI) are key feedback mechanisms controlling CaV channel function.
- The precise mechanisms by which VDI and CDI obstruct ion flow through the CaV channel pore are not fully understood.
Purpose of the Study:
- To investigate the role of asymmetric conformational changes in VDI and CDI of CaV channels.
- To identify specific interfaces and residues critical for these inactivation processes.
Main Methods:
- Site-directed mutagenesis of conserved tryptophan residues in CaV1.3 channel interfaces.
- Molecular dynamics simulations to analyze conformational flexibility.
- Electrophysiological recordings to assess VDI and CDI.
Main Results:
- Mutagenesis of the CaV1.3 domain III-IV interface, but not other interfaces, significantly enhanced VDI.
- Molecular dynamics simulations revealed that mutations in different selectivity filter interfaces differentially affect conformational flexibility.
- Mutations in specific domains preferentially disrupted CaM-mediated CDI, indicating structural bifurcation of CaM signaling.
Conclusions:
- Asymmetric conformational changes at specific CaV channel interfaces are critical for mediating both VDI and CDI.
- The pseudotetrameric structure of the CaV pore domain plays a fundamental role in feedback inhibition.
- Findings elucidate the structural basis of CaV channel inactivation and CaM signaling pathways.
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