Key result
The short isoform of CaV1.3 channels (CaV1.3S) forms functional clusters that open cooperatively in a Ca2+- and calmodulin-dependent manner, facilitating Ca2+ influx and increasing neuronal firing rates.
Refutes the assumption that voltage-gated CaV1.3 channels act independently by demonstrating cooperative gating of clustered CaV1.3S channels, which facilitates Ca2+ entry and increases neuronal firing.
Hypothesis-generating for CaV1.3 cooperativity in neurons; leaves open relevance to cardiac excitability or disease.
CaV1.3 channels regulate excitability in many neurons. As is the case for all voltage-gated channels, it is widely assumed that individual CaV1.3 channels behave independently with respect to voltage-activation, open probability, and facilitation. Here, we report the results of super-resolution imaging, optogenetic, and electrophysiological measurements that refute this long-held view. We found that the short channel isoform (CaV1.3S), but not the long (CaV1.3L), associates in functional clusters of two or more channels that open cooperatively, facilitating Ca(2+) influx. CaV1.3S channels are coupled via a C-terminus-to-C-terminus interaction that requires binding of the incoming Ca(2+) to calmodulin (CaM) and subsequent binding of CaM to the pre-IQ domain of the channels. Physically-coupled channels facilitate Ca(2+) currents as a consequence of their higher open probabilities, leading to increased firing rates in rat hippocampal neurons. We propose that cooperative gating of CaV1.3S channels represents a mechanism for the regulation of Ca(2+) signaling and electrical activity.
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Moreno et al. (2016) studied None (Basic Science). CaV1.3S channel clustering and cooperative gating vs. CaV1.3L channels or uncoupled channels was evaluated on Channel open probability and coupling coefficient. The short isoform of CaV1.3 channels (CaV1.3S) forms functional clusters that open cooperatively in a Ca2+- and calmodulin-dependent manner, facilitating Ca2+ influx and increasing neuronal firing rates.
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