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首页> 外文期刊>Molecular medicine. >Regulation of Vascular Tone, Angiogenesis and CellularBioenergetics by the 3-Mercaptopyruvate Sulfurtransferase/H2S Pathway: Functional Impairment by Hyperglycemia and Restoration by DL-α-Lipoic Acid
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Regulation of Vascular Tone, Angiogenesis and CellularBioenergetics by the 3-Mercaptopyruvate Sulfurtransferase/H2S Pathway: Functional Impairment by Hyperglycemia and Restoration by DL-α-Lipoic Acid

机译:3-巯基丙酮酸硫转移酶/ H2S途径对血管音,血管生成和细胞生物能的调节:高血糖引起的功能障碍和DL-α-硫辛酸的恢复

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摘要

Hydrogen sulfide (H2S), as a reducing agent and an antioxidant molecule, exerts protective effects against hyperglycemic stress in the vascular endothelium. The mitochondrial enzyme 3-mercaptopyruvate sulfurtransferase (3-MST) is an important biological source of H2S. We have recently demonstrated that 3-MST activity is inhibited by oxidative stress in vitro and speculated that this may have an adverse effect on cellular homeostasis. In the current study, given the importance of H2S as a vasorelaxant, angiogenesis stimulator and cellular bioenergetic mediator, we first determined whether the 3-MST/H2S system plays a physiological regulatory role in endothelial cells. Next, we tested whether a dysfunction of this pathway develops during the development of hyperglycemia and diabetes-associated vascular complications. Intraperitoneal (IP) 3-MP (1 mg/kg) raised plasma H2S levels in rats. 3-MP (10 μmol/L to 1 mmol/L) promoted angiogenesis in vitro in bEnd3 microvascular endothelial cells and in vivo in a Matrigel assay in mice (0.3–1 mg/kg). In vitro studies with bEnd3 cell homogenates demonstrated that the 3-MP-induced increases in H2S production depended on enzymatic activity, although at higher concentrations (1–3 mmol/L) there was also evidence for an additional nonenzymatic H2S production by 3-MP. In vivo, 3-MP facilitated wound healing in rats, induced the relaxation of dermal microvessels and increased mitochondrial bioenergetic function. In vitro hyperglycemia or in vivo streptozotocin diabetes impaired angiogenesis, attenuated mitochondrial function and delayed wound healing; all of these responses were associated with an impairment of the proangiogenic and bioenergetic effects of 3-MP. The antioxidants DL-α-lipoic acid (LA) in vivo, or dihydrolipoic acid (DHLA) in vitro restored the ability of 3-MP to stimulate angiogenesis, cellular bioenergetics and wound healing in hyperglycemia and diabetes. We conclude that diabetes leads to an impairment of the 3-MST/H2S pathway, and speculate that this may contribute to the pathogenesis of hyperglycemic endothelial cell dysfunction. We also suggest that therapy with H2S donors, or treatment with the combination of 3-MP and lipoic acid may be beneficial in improving angiogenesis and bioenergetics in hyperglycemia
机译:硫化氢(H2S)作为还原剂和抗氧化剂分子,对血管内皮的高血糖应激具有保护作用。线粒体酶3-巯基丙酮酸硫转移酶(3-MST)是H2S的重要生物学来源。最近,我们证明了3-MST活性在体外受到氧化应激的抑制,并推测这可能对细胞稳态产生不利影响。在当前的研究中,考虑到H2S作为血管舒张剂,血管生成刺激剂和细胞生物能介质的重要性,我们首先确定3-MST / H2S系统是否在内皮细胞中发挥生理调节作用。接下来,我们测试了在高血糖症和糖尿病相关血管并发症的发生过程中是否会出现此途径的功能障碍。腹膜内(IP)3-MP(1 mg / kg)提高了大鼠的血浆H2S水平。 3-MP(10μmol/ L至1 mmol / L)在bEnd3微血管内皮细胞中促进体外血管生成,在小鼠(0.3–1 mg / kg)的Matrigel测定中促进体内血管生成。用bEnd3细胞匀浆进行的体外研究表明,3-MP诱导的H2S产量增加取决于酶活性,尽管在较高浓度(1-3 mmol / L)下,也有证据表明3-MP还会产生额外的非酶H2S产量。 。在体内,3-MP促进大鼠伤口愈合,诱导真皮微血管松弛并增加线粒体生物能功能。体外高血糖症或体内链脲佐菌素糖尿病会损害血管生成,减弱线粒体功能并延迟伤口愈合;所有这些反应都与3-MP的促血管生成和生物能效应受损有关。体内抗氧化剂DL-α-硫辛酸(LA)或体外二氢硫辛酸(DHLA)在高血糖症和糖尿病患者中恢复了3-MP刺激血管生成,细胞生物能和伤口愈合的能力。我们得出的结论是,糖尿病会导致3-MST / H2S通路受损,并推测这可能与高血糖内皮细胞功能障碍的发病机理有关。我们还建议,使用H2S供体进行治疗,或将3-MP和硫辛酸联合使用可能有助于改善高血糖症的血管生成和生物能

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