Key result
Cardiac-specific expression of a dominant-negative CELF protein caused severe cardiomyopathy and premature death, which was rescued by overexpressing wild-type CELF protein CUG-BP1.
CELF protein activity is required for normal alternative splicing in the heart in vivo, which is essential for normal cardiac function and survival.
CELF splicing activity is essential for cardiac function in vivo; hypothesis-generating for human cardiomyopathy mechanisms and therapies.
Members of the CELF family of RNA binding proteins have been implicated in alternative splicing regulation in developing heart. Transgenic mice that express a nuclear dominant-negative CELF protein specifically in the heart (MHC-CELFDelta) develop cardiac hypertrophy and dilated cardiomyopathy with defects in alternative splicing beginning as early as 3 weeks after birth. MHC-CELFDelta mice exhibit extensive cardiac fibrosis, severe cardiac dysfunction, and premature death. Interestingly, the penetrance of the phenotype is greater in females than in males despite similar levels of dominant-negative expression, suggesting that there is sex-specific modulation of splicing activity. The cardiac defects in MHC-CELFdelta mice are directly attributable to reduced levels of CELF activity, as crossing these mice with mice overexpressing CUG-BP1, a wild-type CELF protein, rescues defects in alternative splicing, the severity and incidence of cardiac hypertrophy, and survival. We conclude that CELF protein activity is required for normal alternative splicing in the heart in vivo and that normal CELF-mediated alternative splicing regulation is in turn required for normal cardiac function.
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Ladd et al. (2005) studied Cardiac hypertrophy and dilated cardiomyopathy. Expression of a nuclear dominant-negative CELF protein (MHC-CELFDelta) vs. Mice overexpressing CUG-BP1 (wild-type CELF protein) was evaluated on Cardiac hypertrophy, dilated cardiomyopathy, alternative splicing defects, cardiac fibrosis, cardiac dysfunction, and premature death. Cardiac-specific expression of a dominant-negative CELF protein caused severe cardiomyopathy and premature death, which was rescued by overexpressing wild-type CELF protein CUG-BP1.
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