Related Experiment Video
Updated: Aug 6, 2026

Biventricular Assessment of Cardiac Function and Pressure-Volume Loops by Closed-Chest Catheterization in Mice
Published on: June 15, 2020
Structural rigidity of the I-II loop couples CaV β anchoring to CaV2.2 gating modes
Jin-Nyeong Woo1, Jung-Eun Kim1, Byung-Chang Suh1
1Department of Brain Sciences, Daegu Gyeongbuk Institute of Science and Technology, Daegu 42988, Republic of Korea.
None:
The auxiliary β subunits of voltage-gated Ca2+ (CaV) channels are fundamental regulators of channel gating and neuronal excitability. While the subcellular localization of β subunits is known to influence current density and inactivation, the precise kinetic mechanism by which they differentially modulate channel opening and closing remains elusive. Here, we report a kinetic paradox in CaV2.2 channels: membrane-anchored β subunits decelerate current decay during depolarization yet accelerate tail deactivation upon repolarization, whereas cytosolic β subunits promote rapid decay but prolong deactivation. Using quantitative kinetic analysis and Markov state modeling, we demonstrate that macroscopic current decay is not solely a monolithic irreversible inactivation process but a composite of irreversible inactivation and a reversible transition to a nonconducting state. We reveal that membrane-anchored β subunits suppress the transition to this reversible nonconducting state, thereby maintaining the open state, while facilitating a rapid return from the nonconducting state to prevent kinetic trapping. Furthermore, by manipulating the linker length of β subunits and engineering the I-II loop hinge region (R370), we identify that the physical proximity of the β subunit to the plasma membrane, coupled with the structural rigidity of the I-II loop, acts as a mechanical determinant that governs this gating pathway selection. Our findings provide a unified gating model in which the β subunit fine-tunes the dynamic equilibrium between conducting and nonconducting states via mechanical constraint on the channel complex, offering a comprehensive resolution to the distinct regulation of CaV2.2 kinetics.
Related Concept Videos
Ligand-Gated Ion Channel Receptor: Gating Mechanism
Aortic Regurgitation I: Introduction
Ventilatory Modes
There are three ventilatory modes: full support, partial support, and spontaneous. These are described below.
Full Support Modes
Full support modes include controlled mechanical ventilation, continuous mandatory...
Anastomoses
Anastomoses can be formed at arterial, venous, and lymphatic vessels.
Arterial Anastomosis: These occur between arteries. They are most common in...
Node Analysis for AC Circuits
To unravel the complexities of this system, nodal analysis is employed, a powerful technique founded on Kirchhoff's current law (KCL), which remains valid for phasors. AC circuits can effectively be...
Mechanically-gated Ion Channels