首页> 外文OA文献 >Adp-ribosyl cyclase and cyclic ADP-ribose hydrolase act as a redox sensor. a primary role for cyclic ADP-ribose in hypoxic pulmonary vasoconstriction.
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Adp-ribosyl cyclase and cyclic ADP-ribose hydrolase act as a redox sensor. a primary role for cyclic ADP-ribose in hypoxic pulmonary vasoconstriction.

机译:Adp-核糖基环化酶和环状ADP-核糖水解酶充当氧化还原传感器。环状ADP-核糖在低氧性肺血管收缩中的主要作用。

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摘要

Hypoxic pulmonary vasoconstriction is unique to pulmonary arteries and serves to match lung perfusion to ventilation. However, in disease states this process can promote hypoxic pulmonary hypertension. Hypoxic pulmonary vasoconstriction is associated with increased NADH levels in pulmonary artery smooth muscle and with intracellular Ca(2+) release from ryanodine-sensitive stores. Because cyclic ADP-ribose (cADPR) regulates ryanodine receptors and is synthesized from beta-NAD(+), we investigated the regulation by beta-NADH of cADPR synthesis and metabolism and the role of cADPR in hypoxic pulmonary vasoconstriction. Significantly higher rates of cADPR synthesis occurred in smooth muscle homogenates of pulmonary arteries, compared with homogenates of systemic arteries. When the beta-NAD(+):beta-NADH ratio was reduced, the net amount of cADPR accumulated increased. This was due, at least in part, to the inhibition of cADPR hydrolase by beta-NADH. Furthermore, hypoxia induced a 10-fold increase in cADPR levels in pulmonary artery smooth muscle, and a membrane-permeant cADPR antagonist, 8-bromo-cADPR, abolished hypoxic pulmonary vasoconstriction in pulmonary artery rings. We propose that the cellular redox state may be coupled via an increase in beta-NADH levels to enhanced cADPR synthesis, activation of ryanodine receptors, and sarcoplasmic reticulum Ca(2+) release. This redox-sensing pathway may offer new therapeutic targets for hypoxic pulmonary hypertension.
机译:缺氧性肺血管收缩是肺动脉特有的,可以使肺灌注与通气匹配。但是,在疾病状态下,此过程可促进缺氧性肺动脉高压。缺氧性肺血管收缩与肺动脉平滑肌中的NADH水平升高以及与雷诺定敏感性敏感的细胞内Ca(2+)释放有关。因为环状ADP-核糖(cADPR)调节了ryanodine受体并由β-NAD(+)合成,所以我们研究了β-NADH对cADPR合成和代谢的调节以及cADPR在低氧性肺血管收缩中的作用。与全身动脉匀浆相比,肺动脉平滑肌匀浆中发生cADPR合成的比率明显更高。当降低beta-NAD(+):beta-NADH的比例时,cADPR累积的净量会增加。这至少部分是由于β-NADH对cADPR水解酶的抑制作用。此外,低氧诱导肺动脉平滑肌的cADPR水平增加了10倍,而透过膜的cADPR拮抗剂8-bromo-cADPR消除了肺动脉环中的低氧性肺血管收缩。我们建议,细胞氧化还原状态可以通过增加β-NADH的水平与增强的cADPR合成,ryanodine受体的激活和肌质网Ca(2+)的释放相结合。该氧化还原感测途径可为低氧性肺动脉高压提供新的治疗靶标。

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