bioRxiv Science⌕ Search

Biology subjects

Ginion, A.

Publications and source records attributed to Ginion, A..

2 recordsLinked to original sources

Platelet GARP-dependent activation of TGF-β1 limits inflammation and promotes cardiac repair after myocardial infarction

Platelets are increasingly recognized as active regulators of inflammation beyond their canonical hemostatic functions. Although platelets rapidly accumulate in the injured myocardium after myocardial infarction (MI), the mechanisms by which they coordinate the inflammatory response remain poorly understood. Glycoprotein A repetitions predominant (GARP) is a membrane receptor that presents latent transforming growth factor-{beta}1 (TGF-{beta}1) on activated platelets and supports its activation. Given the central role of TGF-{beta}1 in inflammation and tissue repair, we hypothesized that platelet GARP-dependent activation of TGF-{beta}1 regulates inflammatory resolution and repair after MI. Using mice with megakaryocyte-and platelet-specific Garp deletion, we demonstrate that loss of platelet GARP selectively impaired generation of bioactive TGF-{beta}1 without altering platelet reactivity. Following permanent coronary artery ligation, platelet-specific Garp deficiency markedly increased mortality from ventricular rupture and exacerbated adverse left ventricular remodeling, independent of initial infarct size. Transcriptomic and histological analyses revealed heightened endothelial cell activation, increased leukocyte recruitment, delayed inflammatory resolution, and defective extracellular matrix deposition in the absence of platelet GARP. Mechanistically, platelet GARP-dependent TGF-{beta}1 signaling restrained endothelial activation after MI. Together, these findings identify platelet GARP-mediated activation of TGF-{beta}1 as a critical platelet-intrinsic counter-regulatory checkpoint that limits endothelial-driven inflammation and promotes infarct stabilization. Our study reveals an unexpected protective immunoregulatory function of platelets in cardiac repair after ischemic injury.

pathology↗

Sodium myo-inositol cotransporter-1, SMIT1, promotes cardiac hypertrophy and fibrosis in pressure overloaded mouse hearts

AimsRecent clinical studies have reported that myo-inositol is consistently elevated in plasma of patients with heart failure (HF), yet its role in cardiac dysfunction remains poorly understood. Myo-inositol is specifically transported into cells by the sodium-myo-inositol co-transporter-1 (SMIT1), a member of the sodium-glucose co-transporter (SGLT) family expressed in the heart. While myo-inositol is essential for phosphoinositide signaling, osmoregulation, and metabolic homeostasis, dysregulation of SMIT1-mediated myo-inositol transport may contribute to key pathological mechanisms in HF. This study aims to elucidate the role of SMIT1 in the failing heart, especially during left ventricular remodeling that precedes it. Methods and resultsWe used a mouse model of pressure overload induced by transverse aortic constriction in wild-type (WT) mice and mice lacking SMIT1 (Smit1-/-), and primary cultured cardiomyocytes. By combining molecular, structural and functional studies, RNA-sequencing, and calcium measurements, we demonstrate the contribution of myo-inositol and SMIT1 to pathological hypertrophy and the progression towards HF. We found that in comparison to WT controls, Smit1-/- mice were protected against aortic banding induced systolic dysfunction, cardiac fibrosis and hypertrophy. This hypertrophic response was driven by SMIT1 expression in cardiomyocytes, where it favors intracellular myo-inositol and Na+ entry, leading to inositol 1,4,5-trisphosphate (IP3)- and Ca2+-dependent pro-hypertrophic signaling. Following hemodynamic stress, deletion of SMIT1 significantly altered IP3/calcium effectors, including Carabin, which modulates cardiac hypertrophy through inhibition of the calcineurin/NFAT and Ras/ERK1/2 pathways. ConclusionsThis work provides important insights into the role of myo-inositol and SMIT1 in cardiomyocytes. We demonstrate that SMIT1 is a key driver of pathological hypertrophy by inducing an IP3/Ca2+-dependent pro-hypertrophic transcriptional reprogramming in cardiomyocytes. These findings identify SMIT1 as a promising therapeutic target for preventing or treating pathological cardiac hypertrophy and HF.

cell biology↗