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HO介导的氧化应激通过亚磺酸中间体增强胱硫醚γ-裂合酶衍生的硫化氢合成。

HO-Mediated Oxidative Stress Enhances Cystathionine γ-Lyase-Derived HS Synthesis via a Sulfenic Acid Intermediate.

作者信息

Wang Jun, Jia Guanya, Li Heng, Yan Shasha, Qian Jing, Guo Xin, Li Ge, Qi Haizhen, Zhu Zhilong, Wu Yanjun, He Weijuan, Niu Weining

机构信息

School of Life Sciences, Northwestern Polytechnical University, Xi'an 710072, China.

出版信息

Antioxidants (Basel). 2021 Sep 18;10(9):1488. doi: 10.3390/antiox10091488.

Abstract

Hydrogen sulfide (HS), which is generated mainly by cystathionine -lyase (CSE) in the cardiovascular system, plays a pivotal role in a wide range of physiological and pathological processes. However, the regulatory mechanism of the CSE/HS system is poorly understood. Herein, we show that oxidation induces the disulfide bond formation between Cys252 and Cys255 in the CXXC motif, thus stimulating the HS-producing activity of CSE. The activity of oxidized CSE is approximately 2.5 fold greater than that of the reduced enzyme. Molecular dynamics and molecular docking suggest that the disulfide bond formation induces the conformational change in the active site of CSE and consequently increases the affinity of the enzyme for the substrate L-cysteine. Mass spectrometry and mutagenesis studies further established that the residue Cys255 is crucial for oxidation sensing. Oxidative stress-mediated sulfenylation of Cys255 leads to a sulfenic acid intermediate that spontaneously forms an intramolecular disulfide bond with the vicinal thiol group of Cys252. Moreover, we demonstrate that exogenous hydrogen peroxide (HO) and endogenous HO triggered by vascular endothelial growth factor (VEGF) promote cellular HS production through the enhancement of CSE activity under oxidative stress conditions. By contrast, incubation with HO or VEGF did not significantly enhance cellular HS production in the presence of PEG-catalase, an enzymatic cell-permeable HO scavenger with high HO specificity. Taken together, we report a new posttranslational modification of CSE that provides a molecular mechanism for HO/HS crosstalk in cells under oxidative stress.

摘要

硫化氢(HS)主要由心血管系统中的胱硫醚 -γ-裂解酶(CSE)产生,在广泛的生理和病理过程中起关键作用。然而,CSE/HS系统的调节机制尚不清楚。在此,我们表明氧化诱导CXXC基序中Cys252和Cys255之间形成二硫键,从而刺激CSE的HS生成活性。氧化型CSE的活性比还原型酶高约2.5倍。分子动力学和分子对接表明,二硫键的形成诱导了CSE活性位点的构象变化,从而增加了该酶对底物L-半胱氨酸的亲和力。质谱和诱变研究进一步证实,残基Cys255对氧化感应至关重要。Cys255的氧化应激介导的亚磺酰化产生一种亚磺酸中间体,该中间体与Cys252的邻位硫醇基团自发形成分子内二硫键。此外,我们证明,在氧化应激条件下,外源性过氧化氢(HO)和血管内皮生长因子(VEGF)触发的内源性HO通过增强CSE活性促进细胞HS生成。相比之下,在存在聚乙二醇过氧化氢酶(一种具有高HO特异性的酶促细胞可渗透HO清除剂)的情况下,用HO或VEGF孵育不会显著增强细胞HS生成。综上所述,我们报道了一种新的CSE翻译后修饰,它为氧化应激下细胞中HO/HS的相互作用提供了一种分子机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ba7d/8466214/9b9bed9dffec/antioxidants-10-01488-g001.jpg

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