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同型半胱氨酸通过激活蛋白激酶C降低血小板一氧化氮水平。

Homocysteine decreases platelet NO level via protein kinase C activation.

作者信息

Signorello Maria Grazia, Segantin Alessia, Passalacqua Mario, Leoncini Giuliana

机构信息

Department of Experimental Medicine, University of Genoa, Genoa, Italy.

出版信息

Nitric Oxide. 2009 Mar;20(2):104-13. doi: 10.1016/j.niox.2008.11.005. Epub 2008 Dec 9.

Abstract

Hyperhomocysteinaemia has been associated with increased risk of thrombosis and atherosclerosis. Homocysteine produces endothelial injury and stimulates platelet aggregation. Several molecular mechanisms related to these effects have been elucidated. The study aimed to deeply investigate the homocysteine effect on nitric oxide formation in human platelets. The homocysteine-induced changes on nitric oxide, cGMP, superoxide anion levels and nitrotyrosine formation were evaluated. The enzymatic activity and the phosphorylation status of endothelial nitric oxide synthase (eNOS) at thr495 and ser1177 residues were measured. The protein kinase C (PKC), assayed by immunofluorescence confocal microscopy technique and by phosphorylation of p47pleckstrin, and NADPH oxidase activation, tested by the translocation to membrane of the two cytosolic subunits p47(phox) and p67(phox), were assayed. Results show that homocysteine reduces platelet nitric oxide and cGMP levels. The inhibition of eNOS activity and the stimulation of NADPH oxidase primed by PKC appear to be involved. PKC stimulates the eNOS phosphorylation of the negative regulatory residue thr495 and the dephosphorylation of the positive regulatory site ser1177. GF109203X and U73122, PKC and phospholipase Cgamma2 pathway inhibitors, respectively, reverse this effect. Moreover, homocysteine stimulates superoxide anion elevation and NADPH oxidase activation. These effects are significantly decreased by GF109203X and U73122, suggesting the involvement of PKC in NADPH oxidase activation. Homocysteine induces formation of the peroxynitrite biomarker nitrotyrosine. Taken together these results suggest that the homocysteine-mediated responses leading to nitric oxide impairment are mainly coupled to PKC activation. Thus homocysteine stimulates platelet aggregation and decreases nitric oxide bioavailability.

摘要

高同型半胱氨酸血症与血栓形成和动脉粥样硬化风险增加有关。同型半胱氨酸会导致内皮损伤并刺激血小板聚集。与这些作用相关的几种分子机制已得到阐明。该研究旨在深入探究同型半胱氨酸对人血小板中一氧化氮生成的影响。评估了同型半胱氨酸诱导的一氧化氮、环磷酸鸟苷(cGMP)、超氧阴离子水平变化以及硝基酪氨酸形成情况。测定了内皮型一氧化氮合酶(eNOS)在苏氨酸495和丝氨酸1177残基处的酶活性及磷酸化状态。通过免疫荧光共聚焦显微镜技术和p47普列克底物蛋白磷酸化检测蛋白激酶C(PKC),并通过两个胞质亚基p47(吞噬细胞氧化酶)和p67(吞噬细胞氧化酶)向膜的转位检测NADPH氧化酶激活情况。结果显示,同型半胱氨酸会降低血小板一氧化氮和cGMP水平。似乎涉及eNOS活性的抑制以及PKC引发的NADPH氧化酶的激活。PKC刺激负性调节残基苏氨酸495处的eNOS磷酸化以及正性调节位点丝氨酸1177处的去磷酸化。分别为PKC和磷脂酶Cγ2途径抑制剂的GF109203X和U73122可逆转这种作用。此外,同型半胱氨酸会刺激超氧阴离子升高和NADPH氧化酶激活。GF109203X和U73122可显著降低这些作用,表明PKC参与了NADPH氧化酶激活。同型半胱氨酸诱导过氧亚硝酸盐生物标志物硝基酪氨酸的形成。综合这些结果表明,同型半胱氨酸介导的导致一氧化氮损伤的反应主要与PKC激活相关。因此,同型半胱氨酸会刺激血小板聚集并降低一氧化氮生物利用度。

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