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Updated: Jun 16, 2026

Dissection of Local Ca2+ Signals in Cultured Cells by Membrane-targeted Ca2+ Indicators
Published on: March 22, 2019
Molecular endpoints of Ca2+/calmodulin- and voltage-dependent inactivation of Ca(v)1.3 channels
Michael R Tadross1, Manu Ben Johny, David T Yue
1Department of Biomedical Engineering, The Johns Hopkins University School of Medicine, Baltimore, MD 21205, USA. mtadross@gmail.com
Abstract:
Ca(2+)/calmodulin- and voltage-dependent inactivation (CDI and VDI) comprise vital prototypes of Ca(2+) channel modulation, rich with biological consequences. Although the events initiating CDI and VDI are known, their downstream mechanisms have eluded consensus. Competing proposals include hinged-lid occlusion of channels, selectivity filter collapse, and allosteric inhibition of the activation gate. Here, novel theory predicts that perturbations of channel activation should alter inactivation in distinctive ways, depending on which hypothesis holds true. Thus, we systematically mutate the activation gate, formed by all S6 segments within Ca(V)1.3. These channels feature robust baseline CDI, and the resulting mutant library exhibits significant diversity of activation, CDI, and VDI. For CDI, a clear and previously unreported pattern emerges: activation-enhancing mutations proportionately weaken inactivation. This outcome substantiates an allosteric CDI mechanism. For VDI, the data implicate a "hinged lid-shield" mechanism, similar to a hinged-lid process, with a previously unrecognized feature. Namely, we detect a "shield" in Ca(V)1.3 channels that is specialized to repel lid closure. These findings reveal long-sought downstream mechanisms of inactivation and may furnish a framework for the understanding of Ca(2+) channelopathies involving S6 mutations.
Insights
Calcium (Ca2+) channel inactivation mechanisms were elucidated by mutating the activation gate. Findings reveal allosteric modulation for Ca2+-dependent inactivation and a novel hinged lid-shield for voltage-dependent inactivation.
Area of Science:
- Molecular Biology
- Biophysics
- Ion Channel Physiology
Background:
- Calcium (Ca2+) channel inactivation, including Ca(2+)/calmodulin-dependent inactivation (CDI) and voltage-dependent inactivation (VDI), are critical for cellular function.
- Downstream mechanisms of CDI and VDI remain debated, with hypotheses including hinged-lid occlusion, selectivity filter collapse, and allosteric inhibition.
Purpose of the Study:
- To investigate the downstream mechanisms of CDI and VDI by systematically mutating the activation gate of Ca(V)1.3 channels.
- To differentiate between proposed inactivation models based on the effects of activation gate mutations.
Main Methods:
- Systematic mutagenesis of the S6 segments forming the activation gate in Ca(V)1.3 channels.
- Electrophysiological characterization of mutant channels to assess activation, CDI, and VDI properties.
Main Results:
- Activation-enhancing mutations in Ca(V)1.3 channels proportionally weakened CDI, supporting an allosteric CDI mechanism.
- Data suggest a "hinged lid-shield" mechanism for VDI, involving a novel shield that prevents lid closure.
Conclusions:
- This study reveals the downstream molecular mechanisms of both CDI and VDI in Ca(V)1.3 channels.
- The findings provide a framework for understanding Ca(2+) channelopathies linked to S6 mutations and inactivation defects.
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