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    BMC Mol Biol. 2009 Mar 12;10:22.

    A family of splice variants of CstF-64 expressed in vertebrate nervous systems.

    Source

    Department of Cell Biology and Biochemistry, Texas Tech University Health Sciences Center, Lubbock, Texas 79430-6540, USA. ganesh.shankarling@ttuhsc.edu

    Abstract

    BACKGROUND:

    Alternative splicing and polyadenylation are important mechanisms for creating the proteomic diversity necessary for the nervous system to fulfill its specialized functions. The contribution of alternative splicing to proteomic diversity in the nervous system has been well documented, whereas the role of alternative polyadenylation in this process is less well understood. Since the CstF-64 polyadenylation protein is known to be an important regulator of tissue-specific polyadenylation, we examined its expression in brain and other organs.

    RESULTS:

    We discovered several closely related splice variants of CstF-64 - collectively called betaCstF-64 - that could potentially contribute to proteomic diversity in the nervous system. The betaCstF-64 splice variants are found predominantly in the brains of several vertebrate species including mice and humans. The major betaCstF-64 variant mRNA is generated by inclusion of two alternate exons (that we call exons 8.1 and 8.2) found between exons 8 and 9 of the CstF-64 gene, and contains an additional 147 nucleotides, encoding 49 additional amino acids. Some variants of betaCstF-64 contain only the first alternate exon (exon 8.1) while other variants contain both alternate exons (8.1 and 8.2). In mice, the predominant form of betaCstF-64 also contains a deletion of 78 nucleotides from exon 9, although that variant is not seen in any other species examined, including rats. Immunoblot and 2D-PAGE analyses of mouse nuclear extracts indicate that a protein corresponding to betaCstF-64 is expressed in brain at approximately equal levels to CstF-64. Since betaCstF-64 splice variant family members were found in the brains of all vertebrate species examined (including turtles and fish), this suggests that betaCstF-64 has an evolutionarily conserved function in these animals. betaCstF-64 was present in both pre- and post-natal mice and in different regions of the nervous system, suggesting an important role for betaCstF-64 in neural gene expression throughout development. Finally, experiments in representative cell lines suggest that betaCstF-64 is expressed in neurons but not glia.

    CONCLUSION:

    This is the first report of a family of splice variants encoding a key polyadenylation protein that is expressed in a nervous system-specific manner. We propose that betaCstF-64 contributes to proteomic diversity by regulating alternative polyadenylation of neural mRNAs.

    PMID:
    19284619
    [PubMed - indexed for MEDLINE]
    PMCID:
    PMC2660332
    Free PMC Article

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