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N-糖基化在 Asn695 可能通过干扰电子传递抑制诱导型一氧化氮合酶的活性。

N-Glycosylation at Asn695 might suppress inducible nitric oxide synthase activity by disturbing electron transfer.

机构信息

Institute of Life Sciences, Chongqing Medical University, Chongqing 400016, China.

Department of Medical Laboratory Technology, Chongqing Medical University, Chongqing 400016, China.

出版信息

Acta Biochim Biophys Sin (Shanghai). 2020 Dec 29;52(12):1360-1372. doi: 10.1093/abbs/gmaa132.

Abstract

Inducible nitric oxide synthase (iNOS) plays critical roles in the inflammatory response and host defense. Previous research on iNOS regulation mainly focused on its gene expression level, and much less is known about the regulation of iNOS function by N-glycosylation. In this study, we report for the first time that iNOS is N-glycosylated in vitro and in vivo. Mass spectrometry studies identified Asn695 as an N-glycosylation site of murine iNOS. Mutating Asn695 to Gln695 yields an iNOS that exhibits greater enzyme activity. The essence of nitric oxide synthase catalytic reaction is electron transfer process, which involves a series of conformational changes, and the linker between the flavin mononucleotide-binding domain and the flavin adenine dinucleotide-binding domain plays vital roles in the conformational changes. Asn695 is part of the linker, so we speculated that attachment of N-glycan to the Asn695 residue might inhibit activity by disturbing electron transfer. Indeed, our NADPH consumption results demonstrated that N-glycosylated iNOS consumes NADPH more slowly. Taken together, our results indicate that iNOS is N-glycosylated at its Asn695 residue and N-glycosylation of Asn695 might suppress iNOS activity by disturbing electron transfer.

摘要

诱导型一氧化氮合酶(iNOS)在炎症反应和宿主防御中发挥着关键作用。先前关于 iNOS 调控的研究主要集中在其基因表达水平上,而对于 N-糖基化对 iNOS 功能的调控知之甚少。本研究首次报道 iNOS 可在体外和体内发生 N-糖基化。质谱研究鉴定出鼠 iNOS 的 Asn695 是一个 N-糖基化位点。将 Asn695 突变为 Gln695 可产生酶活性更高的 iNOS。一氧化氮合酶催化反应的本质是电子转移过程,涉及一系列构象变化,而黄素单核苷酸结合域和黄素腺嘌呤二核苷酸结合域之间的连接区在构象变化中起着至关重要的作用。Asn695 是连接区的一部分,因此我们推测,N-糖基化与 Asn695 残基的结合可能通过干扰电子转移来抑制活性。事实上,我们的 NADPH 消耗结果表明,N-糖基化的 iNOS 消耗 NADPH 的速度更慢。综上所述,我们的结果表明,iNOS 在其 Asn695 残基上发生 N-糖基化,而 Asn695 的 N-糖基化可能通过干扰电子转移来抑制 iNOS 活性。

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