The molecular transition that confers voltage dependence to muscle contraction

M Marina Angelini N Nicoletta Savalli F Federica Steccanella S Savana Maxfield S Serena Pozzi M Marino DiFranco (Department of Physiology, David Geffen School of Medicine at University of California) S Stephen C. Cannon (Department of Physiology, David Geffen School of Medicine at University of California) A Antonios Pantazis R Riccardo Olcese

Abstract

Abstract What is the molecular origin of voltage dependence in skeletal muscle excitation-contraction? Cholinergic transmission to the muscle fiber triggers action potentials, which are sensed by voltage-gated L-type calcium channels (CaV1.1). In turn, the conformational changes in CaV1.1 propagate to and activate intracellular ryanodine receptors (RyR1), causing Ca2+ release and contraction. The CaV1.1 channel has four voltage-sensing domains (VSD-I to -IV) with diverse voltage-sensing properties, so the identity of VSD(s) responsible for conferring voltage dependence to RyR1 opening, is unknown. Using voltage-clamp fluorometry, we show that only VSD-III possesses kinetic, voltage-dependent and pharmacological properties consistent with skeletal-muscle excitability and Ca2+ release. We propose that the earliest voltage-dependent event in the excitation-contraction process is the structural rearrangement of VSD-III that propagates to RyR1 to initiate Ca2+ release and contraction.

Article Details

Volume / Issue Vol. 16, Issue 1
Published May 24, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (9)

M

Marina Angelini

N

Nicoletta Savalli

F

Federica Steccanella

S

Savana Maxfield

S

Serena Pozzi

M

Marino DiFranco

Department of Physiology, David Geffen School of Medicine at University of California

S

Stephen C. Cannon

Department of Physiology, David Geffen School of Medicine at University of California

A

Antonios Pantazis

R

Riccardo Olcese