Abstract

Expression of the β-subunit (CaVβ) is required for normal function of cardiac L-type calcium channels, and its up-regulation is associated with heart failure. CaVβ binds to the α1 pore-forming subunit of L-type channels and augments calcium current density by facilitating channel opening and increasing the number of channels in the plasma membrane, by a poorly understood mechanism. Actin, a key component of the intracellular trafficking machinery, interacts with Src homology 3 domains in different proteins. Although CaVβ encompasses a highly conserved Src homology 3 domain, association with actin has not yet been explored. Here, using co-sedimentation assays and FRET experiments, we uncover a direct interaction between CaVβ and actin filaments. Consistently, single-molecule localization analysis reveals streaklike structures composed by CaVβ2 that distribute over several micrometers along actin filaments in HL-1 cardiomyocytes. Overexpression of CaVβ2-N3 in HL-1 cells induces an increase in L-type current without altering voltage-dependent activation, thus reflecting an increased number of channels in the plasma membrane. CaVβ mediated L-type up-regulation, and CaVβ-actin association is prevented by disruption of the actin cytoskeleton with cytochalasin D. Our study reveals for the first time an interacting partner of CaVβ that is directly involved in vesicular trafficking. We propose a model in which CaVβ promotes anterograde trafficking of the L-type channels by anchoring them to actin filaments in their itinerary to the plasma membrane.

Highlights

  • Enhancement of L-type calcium channel trafficking by ␤-subunits (CaV␤) remains unclear

  • Our results reveal a direct molecular interaction that leads to an increase of L-type calcium currents in the mouse cardiomyocyte HL-1 cell line [25] that depends on an intact actin cytoskeleton

  • CaV␤ Associates with Actin Filaments in Vitro via the Src homology 3 (SH3) and guanylate kinase (GK) Domains—We first studied the ability of CaV␤2 to interact with actin filaments in vitro using a co-sedimentation assay (Fig. 1)

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Summary

Background

Enhancement of L-type calcium channel trafficking by ␤-subunits (CaV␤) remains unclear. Expression of the ␤-subunit (CaV␤) is required for normal function of cardiac L-type calcium channels, and its up-regulation is associated with heart failure. The association of CaV␤2 with CaV1.2␣1, the main LCC in heart [4] increases calcium current density by two different mechanisms: it facilitates the voltage-dependent opening of the channel [15, 17, 18], and it augments the number of channels in the plasma membrane [19]. Our results provide a novel framework for understanding the mechanism by which the CaV␤ regulates the anterograde trafficking of L-type calcium channels and offer new insights into the molecular basis underlying CaV␤ altered expression in the diseased heart

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