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首页> 外文期刊>Journal of cellular biochemistry. >Structural insights into impact of Y134F mutation and discovery of novel fungicidal compounds against CYP51 in Puccinia triticina Puccinia triticina
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Structural insights into impact of Y134F mutation and discovery of novel fungicidal compounds against CYP51 in Puccinia triticina Puccinia triticina

机译:在吡甘替辛嘧啶嘧啶Cyp51中的Y134F突变和发现新型杀真菌化合物的影响和发现的结构洞察

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Sterol 14α‐Demethylase Cytochrome P450 (CYP51) protein involved in ergosterol biosynthesis pathways turn out to be a crucial target for the fungicidal compound. However, the recognition mechanism and dynamic behavior of CYP51 in wheat leaf rust pathogen, Puccinia triticina , is still obscure. Previously, a mutation at position 134 (Y134F) was reported in five European isolates of P. triticina , conversely, structural basis of this mutation remains unclear. To address this problem, three‐dimensional structure of CYP51 protein from P. triticina was successfully built using homology modeling approach. To assess the protein structure stability, wild and mutant‐type CYP51 proteins bound with azole fungicide was subjected to 50?ns molecular dynamics (MD) simulations run. Observably, the comparative protein‐ligand interaction analysis and binding free energy results revealed that impact of the mutation on the thermodynamics and conformational stability of the CYP51 protein was negligible. In addition, we carried out structure‐based virtual screening and identified potent novel fungicidal compounds from four different databases and libraries. Consequently, through MD simulation and thermodynamic integration, four novel compounds such as CoCoCo54211 (CoCoCo database), ZINC04089470 (ZINC database), Allyl pyrocatechol 3,4 diacetate (Natural compound library), and 9‐octadecenoic acid (Traditional Chinese Medicine database) has been predicted as potent fungicidal compound against CYP51 with XPGlide docking score of ?11.41, ?13.64, ?7.40, and ?6.55?kcal/mol, respectively. These compounds were found to form hydrogen bonds with heme group of CYP51, subsequently disturbing the stability and survival of fungus and can be used to control leaf rust in wheat.
机译:参与Ergosterol生物合成途径的甾醇14α-脱甲基酶细胞色素P450(CYP51)蛋白是对杀真菌化合物的关键靶标。然而,CYP51在小麦叶锈病病原体,PUCCINIA Triticina的识别机制和动态行为仍然模糊。以前,在5欧欧洲分离株的第134(Y134F)的突变,相反,该突变的结构基础仍不清楚。为了解决这个问题,使用同源性建模方法成功建立了P. Triticina的Cyp51蛋白的三维结构。为了评估蛋白质结构的稳定性,对邻唑杀菌剂结合的野生和突变型CYP51蛋白质进行50μs分子动力学(MD)模拟。可观察地,比较蛋白 - 配体相互作用分析和结合自由能结果显示,突变对CYP51蛋白的热力学和构象稳定性的影响可忽略不计。此外,我们进行了来自四种不同数据库和文库的结构基虚拟筛选和鉴定了有效的新型杀真菌化合物。因此,通过MD仿真和热力学集成,四种新化合物如Cococo54211(Cococodumated),ZINCO4089470(锌数据库),烯丙基PyrocateChol 3,4-二乙酸酯(天然复合库)和9-十八烷烯酸(中医数据库)有被预测为抗CYP51的有效的杀真菌化合物,具有XpGlide对接得分为11.41,α13.64,α.7.40和α.6.55?kcal / mol。发现这些化合物与CYP51的血红素组形成氢键,随后扰乱真菌的稳定性和存活,可用于控制小麦的叶片生锈。

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