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Carbon monoxide stimulates global protein methylation via its inhibitory action on cystathionine β-synthase

机译:一氧化碳通过对胱硫醚β-合酶的抑制作用来刺激整体蛋白质甲基化

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摘要

Although carbon monoxide derived from heme oxygenase has been reported to exert diverse biological actions in mammals, macromolecules responsible for its direct reception and functional outcomes of the gas binding remain largely unknown. Based on our previous results in vivo suggesting carbon monoxide serves as an inhibitor of cystathionine β-synthase that rate-limits transsulfuration pathway for generation of hydrogen sulfide, we have herein hypothesized that the gas might serve as a regulator of protein methylation through accelerating turnover of remethylation cycle residing at the upstream of the enzyme. Metabolomic analysis in human monoblastic leukemia U937 cells in culture revealed that application of carbon monoxide-releasing molecules caused increases in methionine and S-adenosylmethionine and a decrease in cystathionine in the cells, suggesting the cystathionine β-synthase inhibition by carbon monoxide. Under these circumstances, the cells exhibited global protein arginine methylation: this event was also reproduced by the cell treatment with hemin, a heme oxygenase-1 inducer. The protein arginine methylation elicited by carbon monoxide was attenuated by knocking down cystathionine β-synthase with its small interfering RNA or by blocking S-adenosylhomocysteine hydrolase with adenosine dialdehyde, suggesting remethylation cycling is necessary to trigger the methylation processing. Furthermore, proteins undergoing the carbon monoxide-induced arginine methylation involved histone H3 proteins, suggesting chromatin modification by the gas. Collectively with our studies in vivo showing its inhibitory action on endogenous hydrogen sulfide production, the current results suggest that not only inhibition of transsulfuration pathway for H2S generation but also activation of protein methylation accounts for notable biological actions of carbon monoxide via the cystathionine β-synthase inhibition.
机译:尽管据报道源自血红素加氧酶的一氧化碳在哺乳动物中发挥多种生物作用,但负责其直接接收和气体结合功能结果的大分子仍然未知。根据我们先前的体内研究结果,我们推测一氧化碳可以作为胱硫醚β-合酶的抑制剂,从而抑制硫化氢生成的转硫途径,我们在此假设该气体可能通过加速蛋白质的代谢来充当蛋白质甲基化的调节剂。重新甲基化循环位于酶的上游。在培养的人单细胞白血病U937细胞中进行的代谢组学分析表明,一氧化碳释放分子的应用导致细胞中蛋氨酸和S-腺苷蛋氨酸的增加以及胱硫醚的减少,表明一氧化碳对胱硫醚β-合酶的抑制作用。在这种情况下,细胞表现出整体蛋白精氨酸甲基化:通过用血红素加氧酶-1诱导剂血红素进行细胞处理,也重现了这一事件。一氧化碳引发的精氨酸甲基化可以通过用其小的干扰RNA敲除胱硫醚β-合酶或用腺苷二醛阻断S-腺苷同型半胱氨酸水解酶来减弱,这表明重新甲基化循环对于触发甲基化过程是必要的。此外,经历一氧化碳诱导的精氨酸甲基化的蛋白质与组蛋白H3蛋白质有关,这表明该气体对染色质进行了修饰。与我们在体内的研究共同显示其对内源性硫化氢产生的抑制作用,目前的结果表明,不仅抑制硫化氢生成H2S的途径,而且蛋白质甲基化的激活也说明了通过胱硫醚β-合酶对一氧化碳的重要生物学作用。抑制。

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