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Guimaraes, D.

Publications and source records attributed to Guimaraes, D..

2 recordsLinked to original sources

NITRITE INCREASES MITOFUSIN-1 LEVELS TO INHIBIT VASCULAR SMOOTH MUSCLE CELL PROLIFERATION AND PREVENT INTIMAL HYPERPLASIA

Vascular disease remains a leading cause of morbidity and mortality and is driven by maladaptive vascular remodeling following injury. Stent-induced vascular injury induces vascular smooth muscle cell (VSMC) phenotypic switching from a contractile to a proliferative state, resulting in intimal hyperplasia (IH), restenosis and compromised vessel function. Nitrite, an endogenous oxidation product of nitric oxide and a dietary constituent, attenuates IH after vascular injury; however, its underlying mechanisms remain incompletely understood. Nitrite is known to modulate mitochondrial structure and function, and dysregulated mitochondrial dynamics have independently been implicated in VSMC proliferation. We therefore hypothesized that nitrite attenuates IH by modulating mitochondrial dynamics to suppress VSMC proliferation. Using rat aortic smooth muscle cells (RASMCs), we demonstrate that nitrite treatment inhibits cell cycle progression and cell proliferation through upregulation of mitofusin-1 (Mfn1), a GTPase that catalyzes mitochondrial fusion. Mechanistically, nitrite increased Mfn1 protein levels by inhibiting Mfn1 proteasomal degradation. Mfn1 deletion resulted in enhanced proliferation, loss of contractile gene expression, and decreased expression of antioxidant enzymes including catalase and glutathione peroxidase. Restoration of cellular antioxidant capacity significantly attenuated proliferation and preserved contractile gene expression in Mfn1-deficient cells. Smooth muscle cell-specific Mfn1 knockout mice subjected to carotid artery ligation injury exhibited exacerbated IH compared to wildtype mice. Nitrite administration significantly decreased IH in wildtype mice but not Mfn1-deficient mice. These findings identify endogenous Mfn1 as a critical regulator of VSMC cell cycle progression and as an essential mediator of the vasoprotective effects of nitrite.

cell biology↗

Reduced acetylation of TFAM promotes bioenergetic dysfunction in the failing heart

General Control of Amino-Acid Synthesis 5-like 1 (GCN5L1) was previously identified as a key regulator of protein lysine acetylation in mitochondria. Subsequent studies demonstrated that GCN5L1 regulates the acetylation status and activity of mitochondrial fuel substrate metabolism enzymes. However, the role of GCN5L1 in response to chronic hemodynamic stress is largely unknown. Here, we show that cardiomyocyte-specific GCN5L1 knockout mice (cGCN5L1 KO) display exacerbated pressure overload-induced heart failure progression following transaortic constriction (TAC). Mitochondrial DNA and mitochondrial electron transport chain protein levels were decreased in cGCN5L1 KO hearts after TAC, and isolated neonatal cardiomyocytes with reduced GCN5L1 expression had lower bioenergetic output in response to hypertrophic stress. Loss of GCN5L1 expression led to a decrease in the acetylation status of mitochondrial transcription factor A (TFAM) after TAC in vivo, which was linked to a reduction in mtDNA levels in vitro. Together, these data suggest that GCN5L1 may protect from hemodynamic stress by maintaining mitochondrial bioenergetic output. HighlightsO_LIReduced GCN5L1 expression in the failing heart promotes contractile dysfunction C_LIO_LIMitochondrial DNA (mtDNA) levels are reduced in cardiomyocyte-specific GCN5L1 knockout mice following hemodynamic stress C_LIO_LIGCN5L1 knockdown reduces, and GCN5L1 overexpression increases, bioenergetic output in hypertrophic cardiomyocytes C_LIO_LIGCN5L1-mediated acetylation of TFAM promotes increased mtDNA levels C_LI

physiology↗