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Core mitochondrial genes are down-regulated during SARS-CoV-2 infection of rodent and human hosts
Joseph W Guarnieri1,2,3, Joseph M Dybas2,3, Hossein Fazelinia2,3
1Center for Mitochondrial and Epigenomic Medicine, Children's Hospital of Philadelphia, Philadelphia, PA 19104, USA.
Abstract:
Severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) viral proteins bind to host mitochondrial proteins, likely inhibiting oxidative phosphorylation (OXPHOS) and stimulating glycolysis. We analyzed mitochondrial gene expression in nasopharyngeal and autopsy tissues from patients with coronavirus disease 2019 (COVID-19). In nasopharyngeal samples with declining viral titers, the virus blocked the transcription of a subset of nuclear DNA (nDNA)-encoded mitochondrial OXPHOS genes, induced the expression of microRNA 2392, activated HIF-1α to induce glycolysis, and activated host immune defenses including the integrated stress response. In autopsy tissues from patients with COVID-19, SARS-CoV-2 was no longer present, and mitochondrial gene transcription had recovered in the lungs. However, nDNA mitochondrial gene expression remained suppressed in autopsy tissue from the heart and, to a lesser extent, kidney, and liver, whereas mitochondrial DNA transcription was induced and host-immune defense pathways were activated. During early SARS-CoV-2 infection of hamsters with peak lung viral load, mitochondrial gene expression in the lung was minimally perturbed but was down-regulated in the cerebellum and up-regulated in the striatum even though no SARS-CoV-2 was detected in the brain. During the mid-phase SARS-CoV-2 infection of mice, mitochondrial gene expression was starting to recover in mouse lungs. These data suggest that when the viral titer first peaks, there is a systemic host response followed by viral suppression of mitochondrial gene transcription and induction of glycolysis leading to the deployment of antiviral immune defenses. Even when the virus was cleared and lung mitochondrial function had recovered, mitochondrial function in the heart, kidney, liver, and lymph nodes remained impaired, potentially leading to severe COVID-19 pathology.
Insights
Severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) infection disrupts host mitochondrial function, suppressing oxidative phosphorylation and promoting glycolysis. This impairment persists in organs like the heart and kidneys even after viral clearance, contributing to severe COVID-19 pathology.
Area of Science:
- Biochemistry
- Molecular Biology
- Immunology
Background:
- Severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) infection is known to affect various host cellular processes.
- Mitochondrial dysfunction has been implicated in the pathology of COVID-19.
Purpose of the Study:
- To investigate the impact of SARS-CoV-2 on mitochondrial gene expression in different tissues.
- To understand the relationship between viral load, host response, and mitochondrial function during and after COVID-19.
Main Methods:
- Analysis of mitochondrial gene expression in nasopharyngeal and autopsy tissues from COVID-19 patients.
- Examination of mitochondrial gene expression in animal models (hamsters and mice) during SARS-CoV-2 infection.
- Assessment of host immune defense pathways and microRNA expression.
Main Results:
- SARS-CoV-2 suppressed nuclear DNA-encoded mitochondrial oxidative phosphorylation (OXPHOS) genes and induced glycolysis in nasopharyngeal tissues.
- In autopsy tissues, lung mitochondrial gene transcription recovered, but heart, kidney, and liver showed persistent suppression of nuclear DNA-encoded mitochondrial genes with induced mitochondrial DNA transcription and immune activation.
- Animal models showed early systemic mitochondrial gene expression changes, with recovery in lungs over time.
Conclusions:
- SARS-CoV-2 infection triggers a systemic host response that suppresses mitochondrial gene transcription and induces glycolysis, activating antiviral defenses.
- Mitochondrial dysfunction in organs like the heart, kidney, and liver can persist even after viral clearance and lung recovery, potentially driving severe COVID-19 pathology.
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