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Published on: August 3, 2018
Hyaluronan-Binding Protein Promotes Fibroblast Transformation and Heart Failure by Modulating the STAT5A-MMP13
Hui Yan1,2,3, Bing Huang2,3,4, Bofang Zhang2,3,4
1Department of Cardiology, The Fifth Affiliated Hospital, Xinjiang Medical University, Urumqi 830000, China.
Insights
Hyaluronan-binding protein (HYBID) promotes heart failure by activating cardiac fibroblasts and worsening fibrosis after myocardial infarction (MI). Inhibiting HYBID may offer a new therapeutic strategy for heart failure.
Area of Science:
- Cardiovascular Biology
- Molecular Mechanisms of Disease
- Fibrosis Research
Background:
- Adverse cardiac remodeling is a key driver of heart failure progression.
- The specific role of hyaluronan-binding protein (HYBID) in cardiac remodeling and fibrosis is not well understood.
- Understanding HYBID's function is crucial for developing targeted therapies for heart failure.
Purpose of the Study:
- To investigate the role of HYBID as a profibrotic factor in adverse cardiac remodeling post-myocardial infarction (MI).
- To elucidate the functional impact of HYBID on cardiac fibroblasts and its underlying molecular mechanisms.
- To identify potential therapeutic targets for mitigating heart failure progression.
Main Methods:
- Differential gene expression analysis using RNA sequencing in mouse ventricular tissue post-MI.
- Generation of fibroblast-specific HYBID knockdown and overexpression mouse models.
- In vivo and in vitro histological and biochemical assessments of cardiac remodeling.
- Molecular docking and immunoprecipitation assays to determine molecular interactions.
Main Results:
- HYBID was identified as a fibroblast-enriched gene significantly upregulated in MI mouse hearts.
- Fibroblast-specific HYBID knockdown attenuated cardiac remodeling and improved cardiac function post-MI.
- HYBID overexpression exacerbated fibroblast activation and adverse cardiac remodeling.
- HYBID was found to competitively bind STAT5A, inhibiting MMP13's anti-fibrotic effects and promoting fibroblast activation.
Conclusions:
- HYBID is a novel, fibroblast-enriched regulator that exacerbates fibrosis and adverse cardiac remodeling following MI.
- The HYBID-STAT5A-MMP13 signaling axis is a critical pathway in the progression of heart failure.
- Targeting HYBID presents a potential therapeutic strategy for heart failure treatment.
Abstract:
Background: Adverse cardiac remodeling drives heart failure progression, but the role of hyaluronan-binding protein (HYBID) in this process remains unclear. This study investigated the role of HYBID as a key profibrotic factor in the progression of adverse cardiac remodeling with a focus on its functional impact on cardiac fibroblasts and underlying molecular mechanisms. Methods: RNA sequencing analysis was employed to identify differentially expressed genes in mouse ventricular tissue post-myocardial infarction (MI). Fibroblast-specific genetically modified mouse models (knockdown and overexpression) were generated using FSP1 promoter-driven adeno-associated viruses. Comprehensive histological and biochemical assessments were conducted both in vivo and in vitro to evaluate the effects of HYBID modulation on cardiac remodeling. Molecular docking and immunoprecipitation assays were utilized to elucidate the mechanistic interactions between HYBID and its downstream targets. Results: RNA sequencing revealed HYBID as a fibroblast-enriched protein significantly upregulated in myocardial tissue of MI mice. Fibroblast-specific knockdown of HYBID attenuated MI-induced fibroblast activation, improved cardiac function, and mitigated adverse cardiac remodeling. Conversely, HYBID overexpression exacerbated fibroblast activation and promoted cardiac remodeling. Mechanistically, HYBID was found to competitively bind to STAT5A, thereby inhibiting the anti-fibrotic effects of MMP13 and driving fibroblast activation and adverse remodeling post-MI. Conclusions: Our findings establish HYBID as a novel fibroblast-enriched regulator that exacerbates fibrosis and adverse cardiac remodeling following MI. By uncovering the HYBID-STAT5A-MMP13 axis as a critical signaling pathway, this study provides new insights into the molecular mechanisms underlying heart failure progression.
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