Alternative splicing in the C-terminus of CaV2.2 controls expression and gating of N-type calcium channels
Andrew J Castiglioni1, Jesica Raingo, Diane Lipscombe
1Department of Neuroscience, Box 1953, Brown University, Providence, RI 02912, USA.
Abstract:
N-type Ca(V)2.2 calcium channels localize to presynaptic nerve terminals of nociceptors where they control neurotransmitter release. Nociceptive neurons express a unique set of ion channels and receptors important for optimizing their role in transmission of noxious stimuli. Included among these is a structurally and functionally distinct N-type calcium channel splice isoform, Ca(V)2.2e[37a], expressed in a subset of nociceptors and with limited expression in other parts of the nervous system. Ca(V)2.2[e37a] arises from the mutually exclusive replacement of e37a for e37b in the C-terminus of Ca(V)2.2 mRNA. N-type current densities in nociceptors that express a combination of Ca(V)2.2e[37a] and Ca(V)2.2e[37b] mRNAs are significantly larger compared to cells that express only Ca(V)2.2e[37b]. Here we show that e37a supports increased expression of functional N-type channels and an increase in channel open time as compared to Ca(V)2.2 channels that contain e37b. To understand how e37a affects N-type currents we compared macroscopic and single-channel ionic currents as well as gating currents in tsA201 cells expressing Ca(V)2.2e[37a] and Ca(V)2.2e[37b]. When activated, Ca(V)2.2e[37a] channels remain open for longer and are expressed at higher density than Ca(V)2.2e[37b] channels. These unique features of the Ca(V)2.2e[37a] isoform combine to augment substantially the amount of calcium that enters cells in response to action potentials. Our studies of the e37a/e37b splice site reveal a multifunctional domain in the C-terminus of Ca(V)2.2 that regulates the overall activity of N-type calcium channels in nociceptors.
Insights
A novel splice isoform of N-type calcium channels, Ca(V)2.2e[37a], significantly increases calcium influx in nociceptors by enhancing channel expression and prolonging open times, impacting pain signaling.
Area of Science:
- Neuroscience
- Molecular Biology
- Ion Channel Physiology
Background:
- N-type Ca(V)2.2 calcium channels are crucial for neurotransmitter release at nociceptor presynaptic terminals.
- Nociceptive neurons express unique ion channels, including specific Ca(V)2.2 splice variants, to modulate pain signal transmission.
Purpose of the Study:
- To investigate the functional impact of the Ca(V)2.2e[37a] splice isoform on N-type calcium channel activity in nociceptors.
- To elucidate the molecular mechanisms by which the e37a/e37b splice site in Ca(V)2.2 mRNA influences channel expression and function.
Main Methods:
- Comparison of macroscopic and single-channel ionic currents in tsA201 cells expressing Ca(V)2.2e[37a] and Ca(V)2.2e[37b] isoforms.
- Analysis of gating currents to assess the functional differences between Ca(V)2.2 splice variants.
Main Results:
- The Ca(V)2.2e[37a] isoform supports higher expression of functional N-type channels compared to Ca(V)2.2e[37b].
- Ca(V)2.2e[37a] channels exhibit significantly longer open times upon activation than Ca(V)2.2e[37b] channels.
- These combined effects lead to a substantial increase in calcium influx into cells expressing Ca(V)2.2e[37a].
Conclusions:
- The Ca(V)2.2e[37a] splice isoform plays a critical role in augmenting N-type calcium channel activity in nociceptors.
- The C-terminal e37a/e37b splice site represents a multifunctional regulatory domain for Ca(V)2.2 channel activity.
- Understanding these splice variants offers insights into pain transmission mechanisms and potential therapeutic targets.
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