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拟除虫菊酯羧酸酯酶 PytH 来自 JZ-2:结构与催化机制。

Pyrethroid Carboxylesterase PytH from JZ-2: Structure and Catalytic Mechanism.

机构信息

Key Laboratory of Agricultural and Environmental Microbiology, Ministry of Agriculture, College of Life Sciences, Nanjing Agricultural University, Nanjing, China.

Shanghai Advanced Research Institute, Chinese Academy of Sciences, Shanghai, China.

出版信息

Appl Environ Microbiol. 2020 Jun 2;86(12). doi: 10.1128/AEM.02971-19.

Abstract

Carboxylesterase PytH, isolated from the pyrethroid-degrading bacterium JZ-2, could rapidly hydrolyze the ester bond of a wide range of pyrethroid pesticides, including permethrin, fenpropathrin, cypermethrin, fenvalerate, deltamethrin, cyhalothrin, and bifenthrin. To elucidate the catalytic mechanism of PytH, we report here the crystal structures of PytH with bifenthrin (BIF) and phenylmethylsulfonyl fluoride (PMSF) and two PytH mutants. Though PytH shares low sequence identity with reported α/β-hydrolase fold proteins, the typical triad catalytic center with Ser-His-Asp triad (Ser78, His230, and Asp202) is present and vital for the hydrolase activity. However, no contact was found between Ser78 and His230 in the structures we solved, which may be due to the fact that the PytH structures we determined are in their inactive or low-activity forms. The structure of PytH is composed of a core domain and a lid domain; some hydrophobic amino acid residues surrounding the substrate from both domains form a deeper and wider hydrophobic pocket than its homologous structures. This indicates that the larger hydrophobic pocket makes PytH fit for its larger substrate binding; both lid and core domains are involved in substrate binding, and the lid domain-induced core domain movement may make the active center correctly positioned with substrates. Pyrethroid pesticides are widely applied in agriculture and household; however, extensive use of these pesticides also causes serious environmental and health problems. The hydrolysis of pyrethroids by carboxylesterases is the major pathway of microbial degradation of pyrethroids, but the structure of carboxylesterases and its catalytic mechanism are still unknown. Carboxylesterase PytH from JZ-2 could effectively hydrolyze a wide range of pyrethroid pesticides. The crystal structures of PytH are solved in this study. This showed that PytH belongs to the α/β-hydrolase fold proteins with typical catalytic Ser-His-Asp triad, though PytH has a low sequence identity (about 20%) with them. The special large hydrophobic binding pocket enabled PytH to bind bigger pyrethroid family substrates. Our structures shed light on the substrate selectivity and the future application of PytH and deepen our understanding of α/β-hydrolase members.

摘要

从拟除虫菊酯降解菌 JZ-2 中分离得到的羧酸酯酶 PytH 能够快速水解多种拟除虫菊酯农药的酯键,包括氯菊酯、甲氰菊酯、氯氰菊酯、氰戊菊酯、溴氰菊酯、氯氟氰菊酯和联苯菊酯。为了阐明 PytH 的催化机制,我们在此报告了 PytH 与联苯菊酯(BIF)和苯甲基磺酰氟(PMSF)以及两种 PytH 突变体的晶体结构。尽管 PytH 与报道的 α/β-水解酶折叠蛋白的序列同一性较低,但存在典型的三氨基酸催化中心 Ser-His-Asp 三联体(Ser78、His230 和 Asp202),这对于水解酶活性至关重要。然而,在我们解决的结构中没有发现 Ser78 和 His230 之间的接触,这可能是由于我们确定的 PytH 结构处于非活性或低活性形式。PytH 的结构由核心结构域和盖子结构域组成;来自两个结构域的围绕底物的一些疏水性氨基酸残基形成了一个比其同源结构更深、更宽的疏水性口袋。这表明较大的疏水性口袋使 PytH 适合其较大的底物结合;盖子和核心结构域都参与了底物结合,盖子结构域诱导的核心结构域运动可能使活性中心与底物正确定位。拟除虫菊酯类农药在农业和家庭中广泛应用;然而,这些农药的广泛使用也会导致严重的环境和健康问题。羧酸酯酶对拟除虫菊酯的水解是微生物降解拟除虫菊酯的主要途径,但羧酸酯酶的结构及其催化机制仍不清楚。来自 JZ-2 的羧酸酯酶 PytH 可以有效水解多种拟除虫菊酯农药。本研究解决了 PytH 的晶体结构。这表明 PytH 属于具有典型催化 Ser-His-Asp 三联体的 α/β-水解酶折叠蛋白,尽管 PytH 与它们的序列同一性(约 20%)较低。特殊的大疏水性结合口袋使 PytH 能够结合更大的拟除虫菊酯类底物。我们的结构阐明了底物选择性和 PytH 的未来应用,并加深了我们对 α/β-水解酶成员的理解。

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