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Alternative Splicing of Serum Response Factor Reveals Isoform-Specific Remodeling in Cardiac Diseases
Sayed Aliul Hasan Abdi1, Gohar Azhar1, Xiaomin Zhang1
1Department of Geriatrics, Donald W. Reynolds Institute on Aging, University of Arkansas for Medical Sciences, Little Rock, AR 72205, USA.
Insights
Serum response factor (SRF) undergoes significant alternative splicing in heart failure, impacting cardiac remodeling. This study identifies key splicing events and regulatory factors, offering potential therapeutic targets for cardiovascular disease.
Area of Science:
- Cardiovascular Biology
- Molecular Genetics
- Transcriptomics
Background:
- Alternative splicing generates transcriptomic and proteomic diversity, playing a role in cardiovascular disease (CVD) pathogenesis.
- Serum response factor (SRF), crucial for cardiac function, may be regulated by splicing, altering its role in disease.
Purpose of the Study:
- Identify SRF-associated alternative splicing events in cardiac pathologies.
- Examine regulatory interactions between SRF and splicing factors using RNA-seq data.
Main Methods:
- Analyzed human heart RNA-seq data from various cardiac conditions (NICM, ICM, DCM, HFrEF).
- Utilized rMATS to identify splicing events and performed correlation analyses with splicing factors.
- Conducted Gene Ontology (GO) and KEGG pathway enrichment analyses.
Main Results:
- Skipped exon (SE) events were predominant, particularly involving SRF Exon 2 and Exon 5 across heart failure subtypes.
- Strong positive correlations were found between SRF and splicing factors HNRNPL, HNRNPD, SRSF5, and SRSF8.
- Enriched pathways included muscle development, sarcomere structure, lipid metabolism, and immune signaling.
Conclusions:
- SRF exhibits extensive alternative splicing in heart failure, with specific exons (2 and 5) suggesting isoform-specific functions in cardiac remodeling.
- Co-expression with splicing factors highlights a regulatory axis potentially driving the pathological transcriptome in cardiomyopathy.
- Findings support SRF splicing as a basis for novel biomarkers and therapeutic strategies in cardiac pathology.
Abstract:
Background: Alternative splicing is an important mechanism of transcriptomic and proteomic diversity and is progressively involved in cardiovascular disease (CVD) pathogenesis. Serum response factor (SRF), a critical transcription factor in cardiac development and function, may itself undergo splicing regulation, potentially altering its function in disease states. Objective: The objective of this study is to identify SRF-associated alternative splicing events in cardiac pathological conditions and examine regulatory interactions with splicing factors using RNA-seq data. Methods: Three human heart RNA-seq databases (PRJNA198165, PRJNA477855, PRJNA678360) were used, comprising various cardiac conditions like non-ischemic cardiomyopathy (NICM), ischemic cardiomyopathy (ICM), dilated cardiomyopathy (DCM), and heart failure with reduced ejection fraction (HFrEF), with and without left ventricular assist device (LVAD) support. Splicing events were identified using the rMATS tool, and correlation analyses were performed between SRF and predicted splicing factors. Functional enrichment of SRF-correlated genes was assessed via Gene Ontology (GO) and KEGG pathways. Results: The skipped exon (SE) events were the predominant splicing type across all datasets. SRF chr6, including (Exon 2, 43,173,847-43,174,113), (Exon 4, 43,176,548-43,176,667), and (Exon 5, 43,178,294-43,178,485), were most frequently involved in SE and mutually exclusive exon (MXE) events across multiple heart failure subtypes. Correlation analysis revealed strong positive associations between SRF and several splicing factors (HNRNPL, HNRNPD, SRSF5, and SRSF8). GO and KEGG analyses revealed enrichment of muscle development, sarcomere structure, lipid metabolism, and immune signaling pathways. Conclusions: Our study shows that SRF is subject to extensive alternative splicing in heart failure, particularly at Exon 2 and Exon 5, suggesting isoform-specific roles in cardiac remodeling. The strong co-expression with specific splicing factors delineates a regulatory axis that may explain the pathological transcriptome in cardiomyopathy. These findings provide a foundation for exploring splicing-based biomarkers and therapeutic targets in cardiac pathology for SRF.
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