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Lytvyn, M.

Publications and source records attributed to Lytvyn, M..

2 recordsLinked to original sources

Incongruence between transcriptional and vascular pathophysiological cell states

The Notch pathway is a major regulator of transcriptional specification and vascular biology. Previous studies have suggested that targeting the ligand Dll4 or the Notch-receptors results in similar molecular and angiogenesis outcomes. Here, we analyzed single and compound genetic mutants for all Notch signaling members and found very significant differences in the way ligands and receptors regulate vascular homeostasis. Loss of Notch receptors, leads to minor vascular pathology featuring hypermitogenic MAPK-driven cell-cycle arrest and senescence. In contrast, loss of Dll4 triggers a strong Myc-driven switch towards cell proliferation and sprouting and major organ pathology. Targeting of Myc completely suppressed the proliferative and tip-cell angiogenic states induced by Dll4 loss-of-function, however, this did not avoid vascular pathology. Only VEGF blockade prevented the pathology induced by Dll4 loss, but without fully suppressing its transcriptional and metabolic programs. This study shows incongruence between single-cell transcriptional states and adult vascular phenotypes and related pathophysiology.

physiology↗

SARS-CoV-2 protein Nsp1 alters actomyosin cytoskeleton and phenocopies arrhythmogenic cardiomyopathy-related PKP2 mutant

Mutations in desmosomal Plakophilin-2 (PKP2) are the most prevalent drivers of arrhythmogenic cardiomyopathy (ACM) and a common cause of sudden cardiac death in young athletes. However, partner proteins that elucidate PKP2 cellular mechanism to understand cardiac dysfunction in ACM are mostly unknown. Here we identify the actin-based motor proteins Myh9 and Myh10 as key PKP2 interactors, and demonstrate that the expression of the ACM-related PKP2 mutant R735X alters actin fiber organization and cell mechanical stiffness. We also show that SARS-CoV-2 Nsp1 protein acts similarly to this known pathogenic R735X mutant, altering the actomyosin component distribution on cardiac cells. Our data reveal that the viral Nsp1 hijacks PKP2 into the cytoplasm and mimics the effect of delocalized R735X mutant. These results demonstrate that cytoplasmic PKP2, wildtype or mutant, induces the collapse of the actomyosin network, since shRNA-PKP2 knockdown maintains the cell structure, validating a critical role of PKP2 localization in the regulation of actomyosin architecture. The fact that Nsp1 and PKP2 mutant R735X share similar phenotypes also suggests that direct SARS-CoV-2 heart infection could induce a transient ACM-like disease in COVID-19 patients, which may contribute to right ventricle dysfunction, observed in patients with poor survival prognosis. HighlightsThe specific cardiac isoform Plakophilin-2a (PKP2) interacts with Myh9 and Myh10. PKP2 delocalization alters actomyosin cytoskeleton component organization. SARS-CoV-2 Nsp1 protein hijacks PKP2 from the desmosome into the soluble fraction where it is downregulated. Viral Nsp1 collapses the actomyosin cytoskeleton and phenocopies the arrhythmogenic cardiomyopathy-related mutant R735X.

molecular biology↗