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Splicing for alternative structures of Cav1.2 Ca2+ channels in cardiac and smooth muscles
Ping Liao1, Tan Fong Yong, Mui Cheng Liang
1National Neuroscience Institute, Singapore.
Abstract:
An estimate of up to 60% of genes are subjected to alternative splicing, and 15% of human genetic diseases are associated with mutation of the splice sites [Krawczak M, Reiss J, and Cooper DN. The mutational spectrum of single base-pair substitutions in mRNA splice junctions of human genes: causes and consequences. Hum Genet 1992; 90: 41-54; Cooper TA, and Mattox W. The regulation of splice-site selection, and its role in human disease. Am J Hum Genet 1997; 61: 259-66; Modrek B and Lee CJ. Alternative splicing in the human, mouse and rat genomes is associated with an increased frequency of exon creation and/or loss. Nat Genet 2003; 34: 177-80; Modrek B, Resch A, Grasso C, and Lee C. Genome-wide detection of alternative splicing in expressed sequences of human genes. Nucleic Acids Res 2001; 29: 2850-9; Lander ES, Linton LM, Birren B, Nusbaum C, Zody MC, Baldwin J, et al. Initial sequencing and analysis of the human genome. Nature 2001; 409: 860-921] . The molecular diversity of alternatively spliced transcripts provides templates for a myriad of protein structures that are potentially crucial to sustaining the complexity of human physiology. The extensive alternative splicing of the alpha(1)1.2-subunit of the L-type Ca(v)1.2 channel, producing splice variants with distinct electrophysiological and pharmacological properties, would impact directly on the function of the cardiovascular system. Cell-selective expression of Ca(v)1.2 channels containing a specific alternatively spliced exon increases the functional variations for specific cellular activities in response to changing physiological signals. However, the regulation or control of the alpha(1)1.2-subunit alternative splicing machinery is unknown, and the role of numerous splice variants expressed in a cell is a mystery. A systematic and concerted effort is required to determine all the possible combinations of alternatively spliced exons in alpha(1)1.2-subunits in smooth and cardiac muscles. This will provide useful information to monitor changes on the usage of the entire suite of alternatively spliced exons to help relate altered Ca(v)1.2 channel function to physiology and disease.
Insights
Alternative splicing generates diverse protein structures, impacting cardiovascular function through L-type Ca(v)1.2 channels. Understanding splice variant regulation is key to linking channel function to physiology and disease.
Area of Science:
- Molecular Biology
- Genetics
- Cardiovascular Physiology
Background:
- Alternative splicing affects up to 60% of genes, contributing to protein diversity.
- Mutations in splice sites are linked to 15% of human genetic diseases.
- The L-type Ca(v)1.2 channel's alpha(1)1.2-subunit undergoes extensive alternative splicing.
Purpose of the Study:
- To investigate the impact of alternative splicing of the alpha(1)1.2-subunit on L-type Ca(v)1.2 channel function.
- To explore the cell-selective expression of Ca(v)1.2 channel splice variants.
- To elucidate the unknown regulation of the alpha(1)1.2-subunit alternative splicing machinery.
Main Methods:
- Systematic analysis of alternative splicing in alpha(1)1.2-subunits.
- Characterization of splice variants in smooth and cardiac muscles.
- Monitoring splice exon usage to correlate with channel function.
Main Results:
- Alternative splicing of the alpha(1)1.2-subunit produces variants with distinct electrophysiological and pharmacological properties.
- Cell-selective expression of splice variants enhances functional diversity in response to physiological signals.
- The regulation of alpha(1)1.2-subunit alternative splicing and the roles of its variants remain largely unknown.
Conclusions:
- Determining all alternative splicing combinations in alpha(1)1.2-subunits is crucial.
- Understanding splice variant roles will link altered Ca(v)1.2 channel function to physiology and disease.
- Further research is needed to unravel the complexities of alternative splicing in cardiovascular function.
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