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Updated: Oct 9, 2025

Isolation of Atrial Myocytes from Adult Mice
Published on: July 25, 2019
Ischemic Heart Disease Selectively Modifies the Right Atrial Appendage Transcriptome
Severi Mulari1,2, Arda Eskin3, Milla Lampinen1,4
1Department of Pharmacology, Faculty of Medicine, University of Helsinki, Helsinki, Finland.
Insights
Researchers identified specific RNA molecules in the heart
Area of Science:
- Cardiovascular Biology
- Molecular Cardiology
- Genomics
Background:
- Ischemic heart disease (IHD) diagnosis and severity assessment are often delayed.
- Molecular alterations in the ischemic myocardium are not well understood.
- Current diagnostic methods rely on clinical symptoms, imaging, and risk factors.
Purpose of the Study:
- To identify signature RNAs in the atrial myocardium associated with IHD.
- To evaluate the potential of these RNAs as biomarkers for disease severity and treatment outcomes.
- To gain insight into IHD molecular mechanisms.
Main Methods:
- Collected right atrial appendage (RAA) biopsies from IHD patients and non-IHD controls.
- Performed RNA sequencing on RAA tissue.
- Analyzed transcriptomes against healthy donor data (GTEx project).
Main Results:
- IHD transcriptomes showed repressed RNA expression in cell-cell contacts and mitochondrial dysfunction pathways.
- Specific genes (CSRNP3, FUT10, SHD, NAV2-AS4, hsa-mir-181) were significantly associated with coronary artery obstruction complexity.
- These gene expression changes correlated with improved cardiac function after bypass surgery.
Conclusions:
- Identified IHD-associated signature RNAs from the atrial myocardium.
- These findings offer a molecular perspective on IHD pathogenesis.
- Potential for developing novel biomarkers for early IHD detection and treatment.
Abstract:
Background: Although many pathological changes have been associated with ischemic heart disease (IHD), molecular-level alterations specific to the ischemic myocardium and their potential to reflect disease severity or therapeutic outcome remain unclear. Currently, diagnosis occurs relatively late and evaluating disease severity is largely based on clinical symptoms, various imaging modalities, or the determination of risk factors. This study aims to identify IHD-associated signature RNAs from the atrial myocardium and evaluate their ability to reflect disease severity or cardiac surgery outcomes. Methods and Results: We collected right atrial appendage (RAA) biopsies from 40 patients with invasive coronary angiography (ICA)-positive IHD undergoing coronary artery bypass surgery and from 8 patients ICA-negative for IHD (non-IHD) undergoing valvular surgery. Following RNA sequencing, RAA transcriptomes were analyzed against 429 donors from the GTEx project without cardiac disease. The IHD transcriptome was characterized by repressed RNA expression in pathways for cell-cell contacts and mitochondrial dysfunction. Increased expressions of the CSRNP3, FUT10, SHD, NAV2-AS4, and hsa-mir-181 genes resulted in significance with the complexity of coronary artery obstructions or correlated with a functional cardiac benefit from bypass surgery. Conclusions: Our results provide an atrial myocardium-focused insight into IHD signature RNAs. The specific gene expression changes characterized here, pave the way for future disease mechanism-based identification of biomarkers for early detection and treatment of IHD.
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