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利用分子动力学模拟方法研究 PqqB 在 中的生物学作用。

Understanding the biological role of PqqB in using molecular dynamics simulation approach.

机构信息

Microbial Technology Unit-II, ICAR-National Bureau of Agriculturally Important Microorganisms, Mau Nath Bhanjan, India.

ICAR-Indian Agricultural Statistics Research Institute (IASRI), New Delhi, India.

出版信息

J Biomol Struct Dyn. 2022 Jun;40(9):4237-4249. doi: 10.1080/07391102.2020.1854860. Epub 2020 Dec 8.

Abstract

Phosphate solubilization is an important and widely studied plant growth promoting trait exhibited by many bacteria. Pyrroloquinoline quinone (PQQ), a redox cofactor of methanol and glucose dehydrogenases has been well established as essential for phosphate solubilization. PQQ operon has been well studied in growth promoting rhizobacteria like spp., , , etc. However, the role of PqqB is quite ambiguous as its functional role has been contradicted in many studies. In the present study, we selected - a well-known P solubilizing bacterium as a representative species of the genus on the basis of phylogenetic and statistical analyses of PqqB proteins. A 3 D model was generated for this protein. Docking of PqqB with PQQ showed good interaction with a theoretical binding affinity of -7.4 kcal/mol. On the other hand, docking of PqqC with 3a-(2-amino-2-carboxy-ethyl)-4,5-dioxo-4,5,6,7,8,9-hexahydro-quinoline-7,9-dicarboxylic acid (AHQQ, immediate precursor of PQQ) showed strong interaction (-10.4 kcal/mol) but the same was low with PQQ (-6.4 kcal/mol). Molecular dynamic simulation of both the complexes showed stable conformation. The binding energy of PqqB-PQQ complex (-182.710 ± 16.585 kJ/mol) was greater than PqqC-PQQ complex (-166.114 ± 12.027 kJ/mol). The results clearly indicated that kinetically there is a possibility that after cyclization of AHQQ to PQQ by PqqC, PQQ can be taken up by PqqB and transported to periplasm for the oxidation of glucose. To the best of our knowledge, this is the first attempt to understand the biological role of PqqB on the basis of molecular interactions and dynamics.Communicated by Ramaswamy H. Sarma.

摘要

溶磷作用是许多细菌表现出的一种重要且广泛研究的植物生长促进特性。吡咯并喹啉醌(PQQ)作为甲醇和葡萄糖脱氢酶的氧化还原辅助因子,已被证明对溶磷作用至关重要。PQQ 操纵子在生长促进根瘤菌如 spp.、、、等中得到了很好的研究。然而,PqqB 的作用相当模糊,因为它的功能作用在许多研究中存在矛盾。在本研究中,我们根据 PqqB 蛋白的系统发育和统计分析,选择了 - 一种众所周知的溶磷细菌,作为属的代表物种。为该蛋白生成了一个 3D 模型。PqqB 与 PQQ 的对接显示出良好的相互作用,理论结合亲和力为-7.4 kcal/mol。另一方面,PqqC 与 3a-(2-氨基-2-羧乙基)-4,5-二氧代-4,5,6,7,8,9-六氢喹啉-7,9-二羧酸(AHQQ,PQQ 的直接前体)的对接显示出很强的相互作用(-10.4 kcal/mol),但与 PQQ 的相互作用较低(-6.4 kcal/mol)。两种复合物的分子动力学模拟均显示出稳定的构象。PqqB-PQQ 复合物的结合能(-182.710 ± 16.585 kJ/mol)大于 PqqC-PQQ 复合物(-166.114 ± 12.027 kJ/mol)。结果清楚地表明,从动力学上讲,AHQQ 被 PqqC 环化生成 PQQ 后,PQQ 有可能被 PqqB 摄取并运送到周质间隙,用于葡萄糖的氧化。据我们所知,这是首次基于分子相互作用和动力学来理解 PqqB 的生物学作用。由 Ramaswamy H. Sarma 传达。

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