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分子动力学指导的突变分析鉴定出两个天冬氨酸残基参与 OG-OXIDASE 1 的 pH 依赖性活性。

A molecular dynamics-guided mutagenesis identifies two aspartic acid residues involved in the pH-dependent activity of OG-OXIDASE 1.

机构信息

Dept. of Life, Health and Environmental Sciences, University of L'Aquila, 67100, L'Aquila, Italy.

Dept. of Physical and Chemical Sciences, University of L'Aquila, 67100, L'Aquila, Italy.

出版信息

Plant Physiol Biochem. 2021 Dec;169:171-182. doi: 10.1016/j.plaphy.2021.11.011. Epub 2021 Nov 12.

Abstract

During the infection, plant cells secrete different OG-oxidase (OGOX) paralogs, defense flavoproteins that oxidize the oligogalacturonides (OGs), homogalacturonan fragments released from the plant cell wall that act as Damage Associated Molecular Patterns. OGOX-mediated oxidation inactivates their elicitor nature, but on the other hand makes OGs less hydrolysable by microbial endo-polygalacturonases (PGs). Among the different plant defense responses, apoplastic alkalinization can further reduce the degrading potential of PGs by boosting the oxidizing activity of OGOXs. Accordingly, the different OGOXs so far characterized showed an optimal activity at pH values greater than 8. Here, an approach of molecular dynamics (MD)-guided mutagenesis succeeded in identifying the amino acids responsible for the pH dependent activity of OGOX1 from Arabidopsis thaliana. MD simulations indicated that in alkaline conditions (pH 8.5), the residues Asp325 and Asp344 are engaged in the formation of two salt bridges with Arg327 and Lys415, respectively, at the rim of enzyme active site. According to MD analysis, the presence of such ionic bonds modulates the size and flexibility of the cavity used to accommodate the OGs, in turn affecting the activity of OGOX1. Based on functional properties of the site-directed mutants OGOX1.D325A and OGOX.D344A, we demonstrated that Asp325 and Asp344 are major determinants of the alkaline-dependent activity of OGOX1.

摘要

在感染过程中,植物细胞会分泌不同的 OG-氧化酶 (OGOX) 同工酶,即防御黄素蛋白,它们氧化寡半乳糖醛酸 (OGs),OGs 是从植物细胞壁释放的同源半乳糖醛酸片段,作为损伤相关分子模式发挥作用。OGOX 介导的氧化作用使它们失去了激发子的特性,但另一方面,它使微生物内聚半乳糖醛酸酶 (PGs) 水解 OGs 的能力降低。在不同的植物防御反应中,质外体碱化作用可以通过增强 OGOXs 的氧化活性,进一步降低 PGs 的降解潜力。因此,迄今为止表征的不同 OGOX 同工酶在 pH 值大于 8 时表现出最佳活性。在这里,一种基于分子动力学 (MD) 指导的诱变方法成功地鉴定了拟南芥 OG0X1 中负责 pH 依赖性活性的氨基酸。MD 模拟表明,在碱性条件 (pH 8.5) 下,残基 Asp325 和 Asp344 分别与酶活性位点边缘的 Arg327 和 Lys415 形成两个盐桥。根据 MD 分析,这些离子键的存在调节了用于容纳 OGs 的腔的大小和灵活性,从而影响了 OGOX1 的活性。基于定点突变体 OGOX1.D325A 和 OGOX.D344A 的功能特性,我们证明了 Asp325 和 Asp344 是 OGOX1 碱性依赖活性的主要决定因素。

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