Developmental control of CaV1.2 L-type calcium channel splicing by Fox proteins
Zhen Zhi Tang1, Sika Zheng, Julia Nikolic
1Howard Hughes Medical Institute, University of California at Los Angeles, Los Angeles, California 90095-1662, USA.
Abstract:
CaV1.2 voltage-gated calcium channels play critical roles in the control of membrane excitability, gene expression, and muscle contraction. These channels show diverse functional properties generated by alternative splicing at multiple sites within the CaV1.2 pre-mRNA. The molecular mechanisms controlling this splicing are not understood. We find that two exons in the CaV1.2 channel are controlled in part by members of the Fox family of splicing regulators. Exons 9* and 33 confer distinct electrophysiological properties on the channel and show opposite patterns of regulation during cortical development, with exon 9* progressively decreasing its inclusion in the CaV1.2 mRNA over time and exon 33 progressively increasing. Both exons contain Fox protein binding elements within their adjacent introns, and Fox protein expression is induced in cortical neurons in parallel with the changes in CaV1.2 splicing. We show that knocking down expression of Fox proteins in tissue culture cells has opposite effects on exons 9* and 33. The loss of Fox protein increases exon 9* splicing and decreases exon 33, as predicted by the positions of the Fox binding elements and by the pattern of splicing in development. Conversely, overexpression of Fox1 and Fox2 proteins represses exon 9* and enhances exon 33 splicing in the endogenous CaV1.2 mRNA. These effects of Fox proteins on exons 9* and 33 can be recapitulated in transfected minigene reporters. Both the repressive and the enhancing effects of Fox proteins are dependent on the Fox binding elements within and adjacent to the target exons, indicating that the Fox proteins are directly regulating both exons. These results demonstrate that the Fox protein family is playing a key role in tuning the properties of CaV1.2 calcium channels during neuronal development.
Insights
Fox proteins regulate CaV1.2 calcium channel splicing during neuronal development. These splicing regulators fine-tune channel properties by controlling the inclusion of specific exons, impacting neuronal function.
Area of Science:
- Molecular Biology
- Neuroscience
- Genetics
Background:
- CaV1.2 voltage-gated calcium channels are crucial for neuronal function, with their properties modulated by alternative splicing.
- The molecular mechanisms governing CaV1.2 alternative splicing, particularly during development, remain largely unknown.
Purpose of the Study:
- To investigate the role of Fox family splicing regulators in controlling CaV1.2 alternative splicing.
- To elucidate how Fox proteins influence CaV1.2 exon inclusion during cortical development.
Main Methods:
- Analysis of CaV1.2 pre-mRNA splicing patterns during cortical development.
- Investigation of Fox protein binding elements in CaV1.2 introns.
- Knockdown and overexpression studies of Fox proteins in cell culture.
- Minigene reporter assays to validate Fox protein activity.
Main Results:
- Fox proteins directly regulate the alternative splicing of CaV1.2 exons 9* and 33.
- Exon 9* inclusion decreases, while exon 33 inclusion increases during cortical development, correlating with Fox protein expression.
- Fox protein knockdown enhances exon 9* splicing and represses exon 33 splicing, while overexpression has opposite effects.
Conclusions:
- Fox proteins are key regulators of CaV1.2 alternative splicing.
- Differential regulation of CaV1.2 exons by Fox proteins contributes to functional diversity during neuronal development.
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