Suppr超能文献

新型细胞色素在电子传递途径中的功能研究。

Characterization of a Novel Cytochrome Involved in Geobacter sulfurreducens' Electron Harvesting Pathways.

机构信息

Associate Laboratory i4HB-Institute for Health and Bioeconomy NOVA School of Science and Technology, NOVA University Lisbon, 2819-516, Caparica, Portugal.

UCIBIO - Applied Molecular Biosciences Unit, Chemistry Department NOVA School of Science and Technology, NOVA University Lisbon, 2829-516, Caparica, Portugal.

出版信息

Chemistry. 2022 Nov 25;28(66):e202202333. doi: 10.1002/chem.202202333. Epub 2022 Sep 27.

Abstract

Electron harvesting bacteria are key targets to develop microbial electrosynthesis technologies, which are valid alternatives for the production of value-added compounds without utilization of fossil fuels. Geobacter sulfurreducens, that is capable of donating and accepting electrons from electrodes, is one of the most promising electroactive bacteria. Its electron transfer mechanisms to electrodes have been progressively elucidated, however the electron harvesting pathways are still poorly understood. Previous studies showed that the periplasmic cytochromes PccH and GSU2515 are overexpressed in current-consuming G. sulfurreducens biofilms. PccH was characterized, though no putative partners have been identified. In this work, GSU2515 was characterized by complementary biophysical techniques and in silico simulations using the AlphaFold neural network. GSU2515 is a low-spin monoheme cytochrome with a disordered N-terminal region and an α-helical C-terminal domain harboring the heme group. The cytochrome undergoes a redox-linked heme axial ligand switch, with Met and His as distal axial ligands in the reduced and oxidized states, respectively. The reduction potential of the cytochrome is negative and modulated by the pH in the physiological range: -78 mV at pH 6 and -113 mV at pH 7. Such pH-dependence coupled to the redox-linked switch of the axial ligand allows the cytochrome to drive a proton-coupled electron transfer step that is crucial to confer directionality to the respiratory chain. Biomolecular interactions and electron transfer experiments indicated that GSU2515 and PccH form a redox complex. Overall, the data obtained highlight for the first time how periplasmic proteins bridge the electron transfer between the outer and inner membrane in the electron harvesting pathways of G. sulfurreducens.

摘要

电子收集细菌是开发微生物电合成技术的关键目标,该技术是在不使用化石燃料的情况下生产高附加值化合物的有效替代方法。能够从电极中接受和提供电子的脱硫弧菌是最有前途的电活性细菌之一。其向电极的电子转移机制已逐渐阐明,但电子收集途径仍知之甚少。先前的研究表明,在电流消耗型脱硫弧菌生物膜中,周质细胞色素 PccH 和 GSU2515 过表达。PccH 已被表征,但尚未鉴定出其假定的伴侣。在这项工作中,使用互补的生物物理技术和基于 AlphaFold 神经网络的计算模拟对 GSU2515 进行了表征。GSU2515 是一种低自旋单血卟啉细胞色素,具有无序的 N 端区域和含有血红素基团的 α-螺旋 C 端结构域。细胞色素经历一个氧化还原相关的血红素轴向配体开关,在还原态下,Met 和 His 分别作为远端轴向配体。细胞色素的还原电位为负值,并在生理范围内受 pH 调节:在 pH 6 时为-78 mV,在 pH 7 时为-113 mV。这种 pH 依赖性与轴向配体的氧化还原相关开关相结合,使细胞色素能够驱动质子偶联电子转移步骤,这对于赋予呼吸链方向性至关重要。生物分子相互作用和电子转移实验表明,GSU2515 和 PccH 形成一个氧化还原复合物。总的来说,这些数据首次阐明了周质蛋白如何在脱硫弧菌的电子收集途径中在内外膜之间架起电子转移的桥梁。

文献检索

告别复杂PubMed语法,用中文像聊天一样搜索,搜遍4000万医学文献。AI智能推荐,让科研检索更轻松。

立即免费搜索

文件翻译

保留排版,准确专业,支持PDF/Word/PPT等文件格式,支持 12+语言互译。

免费翻译文档

深度研究

AI帮你快速写综述,25分钟生成高质量综述,智能提取关键信息,辅助科研写作。

立即免费体验