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Pimenta, G. F.

Publications and source records attributed to Pimenta, G. F..

2 recordsLinked to original sources

CCR5/CCL5 Links Mitochondrial Dysfunction to Angiotensin II Vascular Injury

AIMChemokine signaling contributes to vascular inflammation and dysfunction in hypertension, yet the intracellular mechanisms linking CCL5/CCR5 activation to vascular impairment remain unclear. We tested the hypothesis that angiotensin II (Ang II) amplifies CCL5/CCR5 signaling to promote mitochondrial dysfunction and oxidative stress in the vasculature. METHODSWild-type and CCR5-deficient mice were infused with Ang II for 14 days, and separate cohorts received recombinant CCL5. Vascular function and remodeling were assessed in aorta and mesenteric arteries, while mitochondrial respiration, membrane potential, and reactive oxygen species (ROS) production were evaluated in vascular smooth muscle cells (VSMCs). RESULTSAng II increased circulating CCL5 levels and upregulated vascular CCR5 expression. CCR5 deficiency protected against Ang II-induced vascular dysfunction, remodeling, and inflammation. CCL5 infusion impaired endothelium-dependent relaxation and enhanced contractility without inducing structural remodeling. In VSMCs, CCL5 disrupted mitochondrial respiration, reduced maximal respiratory capacity, altered membrane potential, and increased mitochondrial ROS in a CCR5-dependent manner. Mitochondrial antioxidant treatment restored endothelial function but did not normalize enhanced contractility. In addition, vessels from CCL5-treated mice were unresponsive to acute mitochondrial uncoupling, consistent with impaired mitochondrial bioenergetic reserve. CONCLUSIONAng II amplifies CCL5/CCR5 signaling to drive mitochondrial dysfunction and oxidative stress, thereby promoting vascular impairment, and identify this pathway as a potential therapeutic target in hypertension.

physiology↗

Progranulin deficiency aggravates aging-induced vascular injury

SignificanceVascular aging is a major contributor to cardiovascular disease, yet the molecular mechanisms of age-associated vascular dysfunction remain incompletely defined. This study reveals a critical role for progranulin (PGRN) in regulating vascular senescence, function, and remodeling during aging. MethodsWe assessed PGRN expression in human and mouse arteries and senescent vascular smooth muscle cells (VSMCs). Functional vascular studies were performed in PGRN-deficient (PGRN-/-) mice. Senescence was modulated pharmacologically using the senolytic agent navitoclax (ABT-263), and vascular phenotype was evaluated in adult (6-month-old) and aged mice (18-month-old). ResultsPGRN expression increased with age in human and mouse arteries, correlating with elevated p21 expression. PGRN deficiency in adult mice induced endothelial dysfunction, increased vasoconstriction, and induced vascular inflammation and remodeling. Transcriptomic analysis of PGRN-/- VSMCs revealed a senescence-associated signature, including perturbed oxidative phosphorylation, altered epigenetic regulation, and collagen pathways. Pharmacological clearance of senescent cells improved endothelial function but increased vascular contractility in PGRN-/- mice. In aged mice, PGRN deficiency aggravated vascular dysfunction, remodeling, and renal injury without further increasing senescence markers--suggesting premature, rather than progressive, senescence in the PGRN-/- mice. ConclusionPGRN is a novel regulator of vascular aging, coordinating senescence, inflammation, and remodeling. While endothelial senescence contributes to dysfunction, VSMCs senescence may serve an adaptive role in modulating vascular tone. Targeting PGRN or senescence pathways may offer therapeutic opportunities for age-related vascular diseases, especially in patients with PGRN mutations associated with frontotemporal dementia.

cell biology↗