Cardiac fibroblast deletion of PTBP1 modulates the profibrotic response by alternative splicing

Dynamic cardiac fibroblast phenotypes drive pathological remodeling and fibrosis, yet post-transcriptional mechanisms controlling fibroblast activation remain poorly defined. Here, we identify the RNA-binding protein polypyrimidine tract binding protein 1 (PTBP1) as a regulator of cardiac fibroblast activation and fibrotic remodeling. Cardiac fibroblast-specific Ptbp1 deletion reduced fibrosis and preserved cardiac function after Angiotensin II infusion, transverse aortic constriction, and myocardial infarction. In vitro, PTBP1 depletion attenuated TGFβ-induced myofibroblast activation, decreasing αSMA and POSTN expression and impairing collagen gel contraction. Transcriptomic and splicing analyses revealed broad PTBP1-dependent gene expression and alternative splicing programs enriched for extracellular matrix organization, cytoskeletal remodeling, and fibroblast function. Mechanistically, PTBP1 regulated Fgfr1 alternative splicing, and restoration of the FGFR1β isoform partially rescued the contractile defect caused by PTBP1 loss. Together, these findings establish PTBP1-dependent alternative splicing as a key mechanism promoting cardiac fibroblast activation and pathological fibrosis. Post-transcriptional regulation of cardiac fibroblast phenotypes during fibrotic cardiac remodeling remains poorly defined. Here, the authors demonstrate that RNA-binding protein PTBP1 regulates alternative splicing to direct the profibrotic response in multiple cardiac injury models.

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Journal
Nature Communications
Published
2026-09-11
DOI
https://doi.org/10.1038/s41467-026-77609-7
Primary Topic
Cardiac Fibrosis and Remodeling
Type
article
Field-Weighted Citation Impact
0.00

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article

Cardiac fibroblast deletion of PTBP1 modulates the profibrotic response by alternative splicing

Yifang Xie, Shufen Chen, Jimena Giudice, Jiandong Liu et al.
Nature Communications
Cardiac Fibrosis and Remodeling
article

Cardiac fibroblast deletion of PTBP1 modulates the profibrotic response by alternative splicing

Yifang Xie, Shufen Chen, Jimena Giudice, Jiandong Liu, Muge N. Kuyumcu‐Martinez, Gabrielle M. Gentile, Shea Ricketts, Paige R. Takasugi, Gregory Farber, Grace Fuller, Sergey Tsoy, Qian Li, Michael Wang, Haofei Wang, Luping Du, Sunil K. Verma, Yanhan Dong, Celine Keles, Wei Hui
article en

Abstract

Dynamic cardiac fibroblast phenotypes drive pathological remodeling and fibrosis, yet post-transcriptional mechanisms controlling fibroblast activation remain poorly defined. Here, we identify the RNA-binding protein polypyrimidine tract binding protein 1 (PTBP1) as a regulator of cardiac fibroblast activation and fibrotic remodeling. Cardiac fibroblast-specific Ptbp1 deletion reduced fibrosis and preserved cardiac function after Angiotensin II infusion, transverse aortic constriction, and myocardial infarction. In vitro, PTBP1 depletion attenuated TGFβ-induced myofibroblast activation, decreasing αSMA and POSTN expression and impairing collagen gel contraction. Transcriptomic and splicing analyses revealed broad PTBP1-dependent gene expression and alternative splicing programs enriched for extracellular matrix organization, cytoskeletal remodeling, and fibroblast function. Mechanistically, PTBP1 regulated Fgfr1 alternative splicing, and restoration of the FGFR1β isoform partially rescued the contractile defect caused by PTBP1 loss. Together, these findings establish PTBP1-dependent alternative splicing as a key mechanism promoting cardiac fibroblast activation and pathological fibrosis. Post-transcriptional regulation of cardiac fibroblast phenotypes during fibrotic cardiac remodeling remains poorly defined. Here, the authors demonstrate that RNA-binding protein PTBP1 regulates alternative splicing to direct the profibrotic response in multiple cardiac injury models.

Nature Communications
University of North Carolina at Chapel Hill (US), University of North Carolina Health Care (US), University of Virginia (US)
National Science Foundation, American Heart Association, National Heart, Lung, and Blood Institute, National Institute of General Medical Sciences
Good health and well-being
Openalex Percentile: Top 11%
Cardiac Fibrosis and Remodeling
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