Mitochondrial antioxidants abate SARS-COV-2 pathology in mice.
Joseph W GuarnieriTimothy LieYentli E Soto AlbrechtPeter HewinKellie A JuradoGabrielle A WidjajaYi ZhuMeagan J McManusTodd J KilbaughKelsey KeithPrasanth PotluriDeanne TaylorAlessia AngelinDeborah G MurdockDouglas C WallacePublished in: Proceedings of the National Academy of Sciences of the United States of America (2024)
Severe Acute Respiratory Syndrome Coronavirus 2 (SARS-CoV-2) infection inhibits mitochondrial oxidative phosphorylation (OXPHOS) and elevates mitochondrial reactive oxygen species (ROS, mROS) which activates hypoxia-inducible factor-1alpha (HIF-1α), shifting metabolism toward glycolysis to drive viral biogenesis but also causing the release of mitochondrial DNA (mtDNA) and activation of innate immunity. To determine whether mitochondrially targeted antioxidants could mitigate these viral effects, we challenged mice expressing human angiotensin-converting enzyme 2 (ACE2) with SARS-CoV-2 and intervened using transgenic and pharmacological mitochondrially targeted catalytic antioxidants. Transgenic expression of mitochondrially targeted catalase (mCAT) or systemic treatment with EUK8 decreased weight loss, clinical severity, and circulating levels of mtDNA; as well as reduced lung levels of HIF-1α, viral proteins, and inflammatory cytokines. RNA-sequencing of infected lungs revealed that mCAT and Eukarion 8 (EUK8) up-regulated OXPHOS gene expression and down-regulated HIF-1α and its target genes as well as innate immune gene expression. These data demonstrate that SARS-CoV-2 pathology can be mitigated by catalytically reducing mROS, potentially providing a unique host-directed pharmacological therapy for COVID-19 which is not subject to viral mutational resistance.
Keyphrases
- sars cov
- respiratory syndrome coronavirus
- mitochondrial dna
- gene expression
- angiotensin converting enzyme
- copy number
- reactive oxygen species
- endothelial cells
- oxidative stress
- angiotensin ii
- weight loss
- innate immune
- cancer therapy
- dna methylation
- single cell
- genome wide
- coronavirus disease
- poor prognosis
- cell death
- bariatric surgery
- dna damage
- drug delivery
- roux en y gastric bypass
- type diabetes
- electronic health record
- deep learning
- skeletal muscle
- combination therapy
- induced pluripotent stem cells
- insulin resistance
- long non coding rna
- crystal structure