AbstractVoltage-dependent Ca2+ channels are heteromultimers of CaVα1 (pore), CaVβ- and CaVα2δ-subunits. The stoichiometry of this complex, and whether it is dynamically regulated in intact cells, remains controversial. Fortunately, CaVβ-isoforms affect gating differentially, and we chose two extremes (CaVβ1a and CaVβ2b) regarding single-channel open probability to address this question. HEK293α1C cells expressing the CaV1.2 subunit were transiently transfected with CaVα2δ1 alone or with CaVβ1a, CaVβ2b, or (2:1 or 1:1 plasmid ratio) combinations. Both CaVβ-subunits increased whole-cell current and shifted the voltage dependence of activation and inactivation to hyperpolarization. Time-dependent inactivation was accelerated by CaVβ1a-subunits...
Abstractβ-Subunits of voltage-dependent Ca2+ channels regulate both their expression and biophysical...
AbstractLarge-conductance Ca2+-activated K+ channels (BK) play a fundamental role in modulating memb...
AbstractElectrophysiological characterization of T-type Ca2+ channel isoforms (Cav3.1, Cav3.2, and C...
AbstractVoltage-dependent Ca2+ channels are heteromultimers of CaVα1 (pore), CaVβ- and CaVα2δ-subuni...
Voltage-dependent Ca2+ channels are heteromultimers of Ca-v alpha(1) (pore), Ca-v beta- and Ca-v alp...
SummaryVoltage-gated calcium channels (CaVs) are large, multisubunit complexes that control cellular...
Cardiac L-type Ca (CaV1.2) channels are composed of a pore forming CaV1.2-α1 subunit and auxiliary β...
Cardiac L-type Ca (CaV1.2) channels are composed of a pore forming CaV1.2-α1 subunit and auxiliary β...
Voltage-gated calcium channels (VGCC) are of paramount importance for a wide range of physiological ...
AbstractWe examined the effects of calcium channel β subunits upon the recovery from inactivation of...
Abstract Objective Low voltage-activated (LVA) calcium channels are crucial for regulating oscillato...
AbstractTo investigate the mechanisms that increase ionic currents when Ca2+ channels’ α1 subunits a...
AbstractThe ancillary β subunits modulate the activation and inactivation properties of high-voltage...
AbstractVoltage gated Ca2+ channel (VGCC) auxiliary β subunits increase membrane expression of the m...
arTICLe aDDeNDUM High voltage-activated (HVA) Cav channels form complexes with KCa1.1 channels, allo...
Abstractβ-Subunits of voltage-dependent Ca2+ channels regulate both their expression and biophysical...
AbstractLarge-conductance Ca2+-activated K+ channels (BK) play a fundamental role in modulating memb...
AbstractElectrophysiological characterization of T-type Ca2+ channel isoforms (Cav3.1, Cav3.2, and C...
AbstractVoltage-dependent Ca2+ channels are heteromultimers of CaVα1 (pore), CaVβ- and CaVα2δ-subuni...
Voltage-dependent Ca2+ channels are heteromultimers of Ca-v alpha(1) (pore), Ca-v beta- and Ca-v alp...
SummaryVoltage-gated calcium channels (CaVs) are large, multisubunit complexes that control cellular...
Cardiac L-type Ca (CaV1.2) channels are composed of a pore forming CaV1.2-α1 subunit and auxiliary β...
Cardiac L-type Ca (CaV1.2) channels are composed of a pore forming CaV1.2-α1 subunit and auxiliary β...
Voltage-gated calcium channels (VGCC) are of paramount importance for a wide range of physiological ...
AbstractWe examined the effects of calcium channel β subunits upon the recovery from inactivation of...
Abstract Objective Low voltage-activated (LVA) calcium channels are crucial for regulating oscillato...
AbstractTo investigate the mechanisms that increase ionic currents when Ca2+ channels’ α1 subunits a...
AbstractThe ancillary β subunits modulate the activation and inactivation properties of high-voltage...
AbstractVoltage gated Ca2+ channel (VGCC) auxiliary β subunits increase membrane expression of the m...
arTICLe aDDeNDUM High voltage-activated (HVA) Cav channels form complexes with KCa1.1 channels, allo...
Abstractβ-Subunits of voltage-dependent Ca2+ channels regulate both their expression and biophysical...
AbstractLarge-conductance Ca2+-activated K+ channels (BK) play a fundamental role in modulating memb...
AbstractElectrophysiological characterization of T-type Ca2+ channel isoforms (Cav3.1, Cav3.2, and C...