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Phosphorylation of the Cav3.2 T-type calcium channel directly regulates its gating properties
Iulia Blesneac1, Jean Chemin1, Isabelle Bidaud1
1Université de Montpellier, CNRS UMR 5203, Département de Neuroscience & Biologie des Canaux Ioniques, Institut de Génomique Fonctionnelle, Montpellier F-34094, France; INSERM, Montpellier F-34094, France; LabEx Ion Channel Science and Therapeutics, Montpellier F-34094, France;
Abstract:
Phosphorylation is a major mechanism regulating the activity of ion channels that remains poorly understood with respect to T-type calcium channels (Cav3). These channels are low voltage-activated calcium channels that play a key role in cellular excitability and various physiological functions. Their dysfunction has been linked to several neurological disorders, including absence epilepsy and neuropathic pain. Recent studies have revealed that T-type channels are modulated by a variety of serine/threonine protein kinase pathways, which indicates the need for a systematic analysis of T-type channel phosphorylation. Here, we immunopurified Cav3.2 channels from rat brain, and we used high-resolution MS to construct the first, to our knowledge, in vivo phosphorylation map of a voltage-gated calcium channel in a mammalian brain. We identified as many as 34 phosphorylation sites, and we show that the vast majority of these sites are also phosphorylated on the human Cav3.2 expressed in HEK293T cells. In patch-clamp studies, treatment of the channel with alkaline phosphatase as well as analysis of dephosphomimetic mutants revealed that phosphorylation regulates important functional properties of Cav3.2 channels, including voltage-dependent activation and inactivation and kinetics. We also identified that the phosphorylation of a locus situated in the loop I-II S442/S445/T446 is crucial for this regulation. Our data show that Cav3.2 channels are highly phosphorylated in the mammalian brain and establish phosphorylation as an important mechanism involved in the dynamic regulation of Cav3.2 channel gating properties.
Insights
Phosphorylation significantly regulates T-type calcium channels (Cav3.2) in the brain. This study maps Cav3.2 phosphorylation sites, revealing its crucial role in channel function and gating.
Area of Science:
- Neuroscience
- Molecular Biology
- Biochemistry
Background:
- Phosphorylation is a key regulator of ion channel activity, but its role in T-type calcium channels (Cav3) is not well understood.
- Cav3 channels are critical for cellular excitability and linked to neurological disorders like epilepsy and pain.
- Dysfunctional Cav3 channels are implicated in various neurological conditions.
Purpose of the Study:
- To systematically analyze the in vivo phosphorylation of T-type calcium channels (Cav3.2) in the mammalian brain.
- To construct the first comprehensive in vivo phosphorylation map for a voltage-gated calcium channel.
- To investigate the functional consequences of Cav3.2 phosphorylation on channel properties.
Main Methods:
- Immunopurification of Cav3.2 channels from rat brain.
- High-resolution mass spectrometry (MS) to identify phosphorylation sites.
- Patch-clamp electrophysiology to assess channel function after enzymatic dephosphorylation and with dephosphomimetic mutants.
Main Results:
- Identified 34 phosphorylation sites on Cav3.2 channels in vivo, with most conserved in human Cav3.2.
- Demonstrated that phosphorylation regulates Cav3.2 voltage-dependent activation, inactivation, and kinetics.
- Pinpointed a critical phosphorylation locus (S442/S445/T446 in loop I-II) responsible for functional regulation.
Conclusions:
- Cav3.2 channels are extensively phosphorylated in the mammalian brain.
- Phosphorylation is a critical mechanism for the dynamic regulation of Cav3.2 channel gating.
- This work provides a foundation for understanding T-type calcium channel regulation in physiological and pathological states.
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