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Updated: Jul 30, 2025

Isolation and Identification of Extravascular Immune Cells of the Heart
Published on: August 23, 2018
Cell-Specific Mechanisms in the Heart of COVID-19 Patients
Emily J Tsai1, Daniela Cˇiháková2, Nathan R Tucker3
1Division of Cardiology, Columbia University Vagelos College of Physicians & Surgeons, New York, NY (E.J.T.).
Insights
COVID-19 infection can cause significant cardiac issues, including elevated troponin levels and heart damage. Research suggests SARS-CoV-2 targets heart pericytes, leading to inflammation and clotting, impacting cardiovascular disease long-term.
Area of Science:
- Cardiology
- Infectious Diseases
- Pathophysiology
Background:
- COVID-19 presents with diverse cardiac manifestations, including arrhythmias, ischemia, and heart failure.
- Elevated cardiac troponin levels correlate with COVID-19 severity and mortality.
- Early studies debated direct SARS-CoV-2 cardiac infection versus inflammatory responses.
Purpose of the Study:
- To review the current understanding of COVID-19 cardiac pathophysiology.
- To highlight cell type-specific mechanisms of SARS-CoV-2 cardiac involvement.
- To explore implications for long COVID-19 and future cardiovascular disease.
Main Methods:
- Review of autopsy studies and in vitro/ex vivo experimental data.
- Analysis of single-cell/nucleus sequencing of COVID-19 myocardial tissue.
- Synthesis of findings on SARS-CoV-2 tropism and cardiac cell responses.
Main Results:
- SARS-CoV-2 detection in cardiac cells was inconsistent; myocarditis is less common than initially thought.
- Microthrombi, cardiomyocyte necrosis, and inflammatory infiltrates are more prevalent.
- Pericytes appear to be a primary target for SARS-CoV-2 in the heart, driving inflammation and immunothrombosis.
Conclusions:
- Pericyte infection by SARS-CoV-2 can explain observed cardiac pathology in COVID-19.
- Understanding these mechanisms is crucial for addressing long COVID-19 and future cardiac risks.
- Further in vivo studies are needed to fully elucidate COVID-19 cardiac pathophysiology.
Abstract:
From the onset of the pandemic, evidence of cardiac involvement in acute COVID-19 abounded. Cardiac presentations ranged from arrhythmias to ischemia, myopericarditis/myocarditis, ventricular dysfunction to acute heart failure, and even cardiogenic shock. Elevated serum cardiac troponin levels were prevalent among hospitalized patients with COVID-19; the higher the magnitude of troponin elevation, the greater the COVID-19 illness severity and in-hospital death risk. Whether these consequences were due to direct SARS-CoV-2 infection of cardiac cells or secondary to inflammatory responses steered early cardiac autopsy studies. SARS-CoV-2 was reportedly detected in endothelial cells, cardiac myocytes, and within the extracellular space. However, findings were inconsistent and different methodologies had their limitations. Initial autopsy reports suggested that SARS-CoV-2 myocarditis was common, setting off studies to find and phenotype inflammatory infiltrates in the heart. Nonetheless, subsequent studies rarely detected myocarditis. Microthrombi, cardiomyocyte necrosis, and inflammatory infiltrates without cardiomyocyte damage were much more common. In vitro and ex vivo experimental platforms have assessed the cellular tropism of SARS-CoV-2 and elucidated mechanisms of viral entry into and replication within cardiac cells. Data point to pericytes as the primary target of SARS-CoV-2 in the heart. Infection of pericytes can account for the observed pericyte and endothelial cell death, innate immune response, and immunothrombosis commonly observed in COVID-19 hearts. These processes are bidirectional and synergistic, rendering a definitive order of events elusive. Single-cell/nucleus analyses of COVID-19 myocardial tissue and isolated cardiac cells have provided granular data about the cellular composition and cell type-specific transcriptomic signatures of COVID-19 and microthrombi-positive COVID-19 hearts. Still, much remains unknown and more in vivo studies are needed. This review seeks to provide an overview of the current understanding of COVID-19 cardiac pathophysiology. Cell type-specific mechanisms and the studies that provided such insights will be highlighted. Given the unprecedented pace of COVID-19 research, more mechanistic details are sure to emerge since the writing of this review. Importantly, our current knowledge offers significant clues about the cardiac pathophysiology of long COVID-19, the increased postrecovery risk of cardiac events, and thus, the future landscape of cardiovascular disease.
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