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Advanced glycation end products-induced mitochondrial energy metabolism dysfunction alters proliferation of human umbilical vein endothelial cells

机译:先进的糖化末端产物诱导的线粒体能量代谢功能障碍改变人脐静脉内皮细胞的增殖

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Advanced glycation end products (AGEs) restrain the proliferation of endothelial cells, which is an important determinant of diabetic vasculopathy. Mitochondrial biogenesis serves an essential role in cellular adaptation and repair. The current study aimed to investigate alterations in mitochondrial energy metabolism in human umbilical vein endothelial cells (HUVECs) and the latent mechanism regulated by AGEs. The proliferation of cultured HUVECs stimulated with AGEs was detected using an MTT assay and a real-time cell analyzer (RTCA). Mitochondrial energy metabolism was measured using a Seahorse metabolic flux analyzer. Mitochondrial membrane potential was detected under fluorescence microscopy following staining with tetraethylrhodamine and MitoTracker Red. Respiratory chain complexes I-V were detected using western blotting. MTT and RTCA assays demonstrated that AGEs treatment significantly inhibited the viability and proliferation of HUVECs when compared with bovine serum albumin treatment. Results from the Seahorse metabolic flux analyzer indicated that mitochondrial aerobic respiration and glycolysis declined following AGEs treatment. In addition, mitochondrial membrane potential and the expression of mitochondrial respiration chain complexes I/II/III/IV/V notably decreased in the presence of AGEs. In conclusion, the results of the present study indicated that AGEs exhibited an inhibitory effect on the proliferation in HUVECs potentially by mediating the dysfunction of mitochondrial energy metabolism and glycolysis. This may provide a new consideration for therapeutic methods in diabetic vascular complications.
机译:晚期糖基化终产物(AGEs)抑制内皮细胞的增殖,这是糖尿病血管病变的重要决定因素。线粒体生物服务于细胞适应和修复中起重要作用。目前的研究旨在探讨人类在线粒体能量代谢的改变脐静脉内皮细胞(HUVEC)和基化终产物调控的潜在机制。培养的HUVECs的增殖刺激,使用MTT测定法和实时细胞分析仪(RTCA)检测的AGEs。线粒体能量代谢,使用测得的海马代谢通量分析仪。在下列与tetraethylrhodamine和的MitoTracker红染色荧光显微镜检测线粒体膜电位。呼吸链复合使用western印迹I-V进行检测。 MTT和RTCA试验证明,当用牛血清白蛋白治疗相比的AGEs治疗显著抑制内皮细胞的活力和增殖。从海马代谢通量分析结果表明,线粒体有氧呼吸和糖酵解下降以下的AGEs治疗。此外,线粒体膜电位和线粒体呼吸链复合物的表达I / II / III / IV / V特别是在终产物的存在减少。总之,本研究的结果表明,表现出的AGEs潜在通过介导线粒体能量代谢和糖酵解的功能障碍上的内皮细胞增殖的抑制作用。这可能对糖尿病血管并发症的治疗方法提供了新的思考。

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