Key result
The crystal structure of the CaV1.2 carboxyl terminus reveals a coiled-coil dimer bridged by calmodulins, and disruption of this interaction significantly reduces Ca2+-dependent inactivation.
p-value: p=<0.01
The discovery of a calmodulin-bridged dimeric structure in the CaV1.2 channel provides a novel structural basis for understanding calcium-dependent inactivation in cardiac calcium channels.
Offers structural template for CaV1.2 modulation; leaves open translation to cardiac electrophysiology or arrhythmias in vivo.
Voltage-dependent calcium channels (Ca(V)) open in response to changes in membrane potential, but their activity is modulated by Ca(2+) binding to calmodulin (CaM). Structural studies of this family of channels have focused on CaM bound to the IQ motif; however, the minimal differences between structures cannot adequately describe CaM's role in the regulation of these channels. We report a unique crystal structure of a 77-residue fragment of the Ca(V)1.2 alpha(1) subunit carboxyl terminus, which includes a tandem of the pre-IQ and IQ domains, in complex with Ca(2+).CaM in 2 distinct binding modes. The structure of the Ca(V)1.2 fragment is an unusual dimer of 2 coiled-coiled pre-IQ regions bridged by 2 Ca(2+).CaMs interacting with the pre-IQ regions and a canonical Ca(V)1-IQ-Ca(2+).CaM complex. Native Ca(V)1.2 channels are shown to be a mixture of monomers/dimers and a point mutation in the pre-IQ region predicted to abolish the coiled-coil structure significantly reduces Ca(2+)-dependent inactivation of heterologously expressed Ca(V)1.2 channels.
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Fallon et al. (2009) studied Cardiac L-type calcium channel regulation. E1613P mutation in CaV1.2 vs. Wild-type CaV1.2 was evaluated on Ca2+-dependent inactivation (CDI) (p=<0.01). The crystal structure of the CaV1.2 carboxyl terminus reveals a coiled-coil dimer bridged by calmodulins, and disruption of this interaction significantly reduces Ca2+-dependent inactivation.
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