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Updated: Nov 10, 2025

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Published on: March 10, 2020
CELF1 promotes vascular endothelial growth factor degradation resulting in impaired microvasculature in heart failure
Kuei-Ting Chang1, Lee-Hsin Wang2, Yu-Mei Lin1
1Institute of Biomedical Sciences, Academia Sinica, Taipei, Taiwan.
Insights
Elevated CUGBP Elav-like family member 1 (CELF1) in heart failure reduces capillary density by decreasing Vegfa mRNA stability. Depleting CELF1 in cardiomyocytes preserves vascularity and Vegfa levels in heart disease.
Area of Science:
- Cardiovascular Biology
- Molecular Cardiology
- Vascular Biology
Background:
- Vascular rarefaction contributes to heart failure by impairing cardiac function.
- The mechanisms regulating vascular rarefaction during heart failure progression are not fully understood.
- Increased CUGBP Elav-like family member 1 (CELF1) expression is linked to the transition from compensated hypertrophy to decompensated heart failure.
Purpose of the Study:
- To investigate the role of elevated CELF1 in causing vascular rarefaction in dilated cardiomyopathy (DCM).
- To elucidate the molecular mechanisms by which CELF1 impacts microvasculature and cardiomyocyte function in heart failure.
Main Methods:
- CELF1 overexpression (CELF1-OE) in cardiomyocytes and mice.
- Assessment of capillary density and hypoxic markers (HIF1α, Glut-1, Pdk-1).
- Quantification of Vegfa mRNA levels and investigation of CELF1 binding to Vegfa mRNA.
Main Results:
- CELF1 overexpression in cardiomyocytes reduced capillary density and induced a hypoxic state.
- Elevated CELF1 downregulated Vegfa mRNA levels in DCM and infarcted hearts.
- Cardiomyocyte-specific CELF1 depletion preserved capillary density and Vegfa mRNA levels.
- CELF1 directly binds to Vegfa mRNA, regulating its stability via the 3' untranslated region.
Conclusions:
- Elevated CELF1 expression contributes to vascular rarefaction in DCM through Vegfa downregulation.
- CELF1 has dual detrimental effects on cardiomyocytes and the cardiac microvasculature in heart failure.
- Targeting CELF1 may offer a therapeutic strategy for preserving vascular function in DCM.
Abstract:
Vascular rarefaction due to impaired angiogenesis is associated with contractile dysfunction and the transition from compensation to decompensation and heart failure. The regulatory mechanism controlling vascular rarefaction during the transition remains elusive. Increased expression of a nuclear RNA-binding protein CUGBP Elav-like family member 1 (CELF1) in the adult heart is associated with the transition from compensated hypertrophy to decompensated heart failure. Elevated CELF1 level resulted in degradation of the major cardiac gap junction protein, connexin 43, in dilated cardiomyopathy (DCM), the most common cause of heart failure. In the present study, we investigated the role of increased CELF1 expression in causing vascular rarefaction in DCM. CELF1 overexpression (CELF1-OE) in cardiomyocytes resulted in reduced capillary density. CELF1-OE mice administered hypoxyprobe showed immunoreactivity and increased mRNA levels of HIF1α, Glut-1, and Pdk-1, which suggested the association of a reduced capillary density-induced hypoxic condition with CELF1 overexpression. Vegfa mRNA level was downregulated in mouse hearts exhibiting DCM, including CELF1-OE and infarcted hearts. Vegfa mRNA level was also downregulated to a similar extent in cardiomyocytes isolated from infarcted hearts by Langendorff preparation, which suggested cardiomyocyte-derived Vegfa expression mediated by CELF1. Cardiomyocyte-specific depletion of CELF1 preserved the capillary density and Vegfa mRNA level in infarcted mouse hearts. Also, CELF1 bound to Vegfa mRNA and regulated Vegfa mRNA stability via the 3' untranslated region. These results suggest that elevated CELF1 level has dual effects on impairing the functions of cardiomyocytes and microvasculature in DCM.
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