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Lizotte, F.

Publications and source records attributed to Lizotte, F..

2 recordsLinked to original sources

Endothelial SHP-1 regulates diabetes-induced abnormal collateral vessel formation and endothelial cell senescence

ObjectiveIschemia due to narrowing of the femoral artery and distal vessels is a major cause of peripheral arterial disease and morbidity affecting patients with diabetes. Diabetes-induced premature senescence of endothelial cells (EC) has been proposed as a mechanism leading to impaired ischemia-driven angiogenesis. Importantly, our previous work has shown that hyperglycemia reduced vascular endothelial growth factor (VEGF) activity in ischemic muscle of diabetic mice, which was associated with increased expression of the protein tyrosine phosphatase Src homology region 2 domain-containing phosphatase-1 (SHP-1). Here, we evaluate the impact of SHP-1 deletion on EC function and senescence. Approach and ResultsLigation of the femoral artery was performed in nondiabetic (NDM) and 3 months diabetic (DM) mice with EC-specific deletion of SHP-1 and blood flow reperfusion was measured for 4 weeks. Blood flow reperfusion and limb function during voluntary wheel running were reduced by 43% and 82%, respectively in DM mice as compared to NDM mice. EC-specific deletion of SHP-1 in DM mice restored blood flow reperfusion by 60%, limb function by 86%, while capillary density was similar to NDM mice. Moreover, ablation of SHP-1 in EC prevented diabetes-induced expression of the senescence markers p53 and p21 and counteracted Nrf2 downregulation. In cultured EC, overexpression of dominant negative of SHP-1 prevented HG-induced inhibition of proliferation, migration, tubule formation and VEGFR2/Akt phosphorylation following VEGF stimulation. In addition, the expression of senescence markers and suppression of Nrf2 in EC exposed to HG levels were reversed by overexpression of dominant negative SHP-1. ConclusionSHP-1 in ECs is a central effector of diabetes-induced senescence that blocks VEGF action, and induces aberrant collateral vessel formation and blood flow reperfusion. Reduced SHP-1 expression counteracts these pathologic features suggesting the notion that it represents a promising therapeutic target. HIGHLIGHTSO_LIEndothelial specific deletion of SHP-1 (Scr homology 2-containing phosphatase-1) improves blood flow reperfusion, limb motricity and vessel density in the diabetic ischemic limb. C_LIO_LIDiabetes-induced SHP-1 protein expression inhibits VEGF proangiogenic actions and promotes endothelial senescence. C_LIO_LIEndothelial specific deletion of SHP-1 restores VEGF proangiogenic actions and prevents senescence in ischemic muscle and artery of diabetic mice and patients. C_LI

cell biology↗

Apelin improves angiogenesis and blood flow reperfusion following lower limb ischemia in diabetic mice

BACKGROUNDPeripheral artery disease (PAD) is a major risk factor for lower-extremity amputation in diabetic patients caused by an insufficient angiogenic response. Unfortunately, therapeutic angiogenesis using growth factors, such as the vascular endothelial growth factor (VEGF), are ineffective in diabetic conditions due to diabetes-induced growth factor resistance. The apelinergic system (APJ receptor/apelin) is highly upregulated under hypoxic condition and acts as an activator of angiogenesis. Apelin treatment has been shown to improve revascularization in nondiabetic models of ischemia, however, its role on angiogenesis in diabetic conditions remains poorly investigated. Thus, this study explored the impact of Pyr-apelin-13 in endothelial cell function and diabetic mouse model of hindlimb ischemia. METHODSNondiabetic and diabetic mice underwent femoral artery ligation to induce lower limb ischemia. A group of diabetic mice was implanted subcutaneously with osmotic pumps delivering Pyr-apelin-13 for 28 days. Blood flow reperfusion was measured for 4 weeks post-surgery and exercise willingness was assessed in individual cages with voluntary wheels. In vitro, BAECs were exposed to normal (NG) or high glucose (HG) levels and hypoxia. Cell migration, proliferation and tube formation assays were performed following either VEGF or Pyr-apelin-13 stimulation. RESULTSFollowing limb ischemia, blood flow reperfusion, functional recovery of the limb and vascular density were improved in diabetic mice receiving Pyr-apelin-13 compared to untreated diabetic mice. In cultured BAECs, exposure to HG concentrations and hypoxia reduced VEGF proangiogenic actions, whereas apelin proangiogenic effects remained unaltered. Pyr-apelin-13 induced its proangiogenic actions through Akt/AMPK/eNOS and RhoA/ROCK signaling pathways under both NG or HG concentrations and hypoxia exposure. CONCLUSIONSPyr-apelin-13 promoted endothelial cell function and angiogenesis in the ischemic limb despite diabetes and HG level exposure. Therefore, our results identified the apelinergic system as a potential therapeutic target for angiogenic therapy in diabetic patients with PAD. HighlightsO_LISustained delivery of Pyr-apelin-13 improves blood flow reperfusion, functional recovery of the hindlimb and capillary density in diabetic mice following ischemia. C_LIO_LIUnlike VEGF, signaling pathways and proangiogenic actions induced by apelin/APJ stimulation are not impaired by high glucose exposure. C_LIO_LIDespite the presence of tissue ischemia, diabetes reduces the expression of apelin and APJ in the ischemic adductor muscle, an effect overcome by apelin administration. C_LI

cell biology↗