志贺毒素n -糖苷酶作用机制的结构与机理研究。

IF 4.8 2区 医学 Q1 TOXICOLOGY Archives of Toxicology Pub Date : 2024-12-13 DOI:10.1007/s00204-024-03927-8
Pavan K Madasu, Thyageshwar Chandran
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引用次数: 0

摘要

志贺毒素是世界上导致食物中毒的主要原因。它在结构上与植物II型核糖体失活蛋白(RIPs)相似,并保持n -糖苷酶活性。它通过去纯化人类28S rRNA的特异性腺嘌呤A4605,最终抑制翻译。最近爆发的疫情和对实验室规模肉类需求的不断增加,证明了生产类毒素的必要性。在本研究中,我们对志贺和蓖麻毒素的n -糖苷酶活性进行了结构和功能的比较分析。初步结构分析表明,志贺蛋白比蓖麻蛋白更灵活,其中一个活性位点Gly121(蓖麻蛋白)突变为Ser(志贺蛋白)。三级结构分析证实了保守活性位点残基的确认。此外,分子动力学研究表明,志iga突变的Ser残基除了与28s rRNA的保守GAGA环相互作用外,还赋予了灵活性,并提供了-5.39 kcal/mol的自由能。我们观察到平均自由结合能呈下降趋势,平均为-23 kcal/mol。残基相互作用网络表明,Arg是激活n -糖苷酶活性的关键残基。总的来说,这些结构研究提供了对n -糖苷酶机制的分子见解,并为类毒素的发展提供了前景。
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In silico structural and mechanistic sights into the N-glycosidase mechanism of Shiga toxin.

Shiga toxin is the leading cause of food poisoning in the world. It is structurally similar to the plant type II ribosome-inactivating proteins (RIPs) and retains N-glycosidase activity. It acts specifically by depurinating the specific adenine A4605 of human 28S rRNA, ultimately inhibiting translation. Recent outbreaks and increasing demands for lab-scale meat assert the necessity for producing toxoids. In the current study, we have carried out the comparative structural and functional analysis of Shiga with ricin for N-glycosidase activity. Primary structural analysis indicates that Shiga is more flexible than ricin and one active site residue Gly121 (ricin), has been mutated to Ser (Shiga). Tertiary structure analysis confirms the conserved active site residue confirmation. Further, molecular dynamic studies indicate that the mutated Ser residue of Shiga imparts flexibility besides interacting with the conserved GAGA loop of 28s rRNA and contributes free energy of -5.39 kcal/mol. We have observed a decreasing trend line of average free binding energy with an average of -23 kcal/mol. The residue interaction network indicates that Arg is the key residue that protonates and initiates the N-glycosidase activity. Overall, these structural studies provide molecular insights into the N-glycosidase mechanism and serve as a prospect for the development of toxoids.

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来源期刊
Archives of Toxicology
Archives of Toxicology 医学-毒理学
CiteScore
11.60
自引率
4.90%
发文量
218
审稿时长
1.5 months
期刊介绍: Archives of Toxicology provides up-to-date information on the latest advances in toxicology. The journal places particular emphasis on studies relating to defined effects of chemicals and mechanisms of toxicity, including toxic activities at the molecular level, in humans and experimental animals. Coverage includes new insights into analysis and toxicokinetics and into forensic toxicology. Review articles of general interest to toxicologists are an additional important feature of the journal.
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