Insights into heme degradation and hydrogen peroxide-induced dimerization of human neuroglobin.

IF 3.8 3区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY Bioscience Reports Pub Date : 2025-01-30 DOI:10.1042/BSR20241265
Alice Cassiani, Paul G Furtmüller, Marco Borsari, Gianantonio Battistuzzi, Stefan Hofbauer
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Abstract

In this present study, we investigated the H2O2-induced oligomerization of wild-type human neuroglobin (hNgb) and of some selected variants (C46AC55A, Y44A, Y44F, Y44AC46AC55A, Y44AC46AC55A) to clarify how the process is affected by the Cys46/Cys55 disulfide bond and the distal H-bonding network and to figure out the molecular determinants of the H2O2-induced formation of amyloid-type structures and hNgb aggregates. It turns out that hydrogen peroxide exerts a two-fold effect on hNgb, inducing both heme breakdown and protein dimerization/polymerization. The enhanced resistance to the oxidizing effect of H2O2 of the disulfide-free variants indicates that both effects are strictly influenced by the heme accessibility for H2O2. Most importantly, the H2O2-induced neuroglobin dimerization/polymerization turns out to be triggered by tyrosyl radicals resulting from the oxidizing action of Compound I ([Por•Fe(IV) = O]+). Peptide mapping indicates that the H2O2-induced dimerization/polymerization of hNgb mainly involves Tyr44, which forms covalent bonds with all the other tyrosine residues, with a minor contribution from Tyr88. The presented findings contribute further important pieces of information in the quest of identifying all capabilities of hNgb and ultimately its physiological task.

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血红素降解和过氧化氢诱导的人类神经红蛋白二聚化的见解。
在这项工作中,我们研究了h2o2诱导的野生型人类神经球蛋白(hNgb)和一些选定的变体(C46AC55A, Y44A, Y44F, Y44AC46AC55A, Y44AC46AC55A)的低聚化,以阐明该过程如何受到Cys46/Cys55二硫键和远端h键网络的影响,并找出h2o2诱导淀粉样蛋白型结构和hNgb聚集体形成的分子决定因素。结果表明,过氧化氢对hNgb具有双重作用,既诱导血红素分解,又诱导蛋白质二聚化/聚合。无二硫变体抗H2O2氧化作用的增强表明,这两种作用都受到血红素对H2O2的可及性的严格影响。最重要的是,h2o2诱导的神经球蛋白二聚化/聚合是由化合物I ([Por•Fe(IV)=O]+)氧化作用产生的酪氨酸自由基触发的。肽图谱显示h2o2诱导hNgb的二聚/聚合主要涉及Tyr44, Tyr44与所有其他酪氨酸残基形成共价键,Tyr88贡献较小。所提出的研究结果为进一步确定人类神经红蛋白的所有功能及其最终的生理任务提供了重要的信息。
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来源期刊
Bioscience Reports
Bioscience Reports 生物-细胞生物学
CiteScore
8.50
自引率
0.00%
发文量
380
审稿时长
6-12 weeks
期刊介绍: Bioscience Reports provides a home for sound scientific research in all areas of cell biology and molecular life sciences. Since 2012, Bioscience Reports has been fully Open Access and publishes all papers under the liberal CC BY licence, giving the life science community quality research to share and discuss.Content before 2012 is subscription-only, and is accessible via archive purchase. Articles are assessed on soundness, providing a home for valid findings and data. We welcome papers that span disciplines (e.g. chemistry, medicine), including papers describing: -new methodologies -tools and reagents to probe biological questions -mechanistic details -disease mechanisms -metabolic processes and their regulation -structure and function -bioenergetics
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