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天然蛋白有机材料中用于微生物还原脱卤的细胞外电子转移功能的广泛分布。

Wide distribution of extracellular electron transfer functionality in natural proteinaceous organic materials for microbial reductive dehalogenation.

机构信息

Graduate School of Engineering, Nagoya University, Tokai National Higher Education and Research System, Chikusa, Nagoya 464-8603, Japan.

Institute of Materials and Systems for Sustainability, Nagoya University, Tokai National Higher Education and Research System, Chikusa, Nagoya 464-8603, Japan.

出版信息

J Biosci Bioeng. 2023 Mar;135(3):238-249. doi: 10.1016/j.jbiosc.2022.12.003. Epub 2023 Jan 14.

Abstract

Extracellular electron transfer materials (EETMs) in the environment, such as humic substances and biochar, are formed from the humification/heating of natural organic materials. However, the distribution of extracellular electron transfer (EET) functionality in fresh natural organic materials has not yet been explored. In the present study, we reveal the wide distribution of EET functionality in proteinaceous materials for the first time using an anaerobic pentachlorophenol dechlorinating consortium, whose activity depends on EETM. Out of 11 natural organic materials and 13 reference compounds, seven proteinaceous organic materials (albumin, beef, milk, pork, soybean, yolk, and bovine serum albumin) functioned as EETMs. Carbohydrates and lipids did not function as EETMs. Comparative spectroscopic analyses suggested that a β-sheet secondary structure was essential for proteins to function as EETMs, regardless of water solubility. A high content of reduced sulfur was potentially involved in EET functionality. Although proteinaceous materials have thus far been considered simply as nutrients, the wide distribution of EET functionality in these materials provides new insights into their impact on biogeochemical cycles. In addition, structural information on EET functionality can provide a scientific basis for the development of eco-friendly EETMs.

摘要

环境中的细胞外电子传递材料(EETMs),如腐殖质和生物炭,是由天然有机材料的腐殖化/加热形成的。然而,新鲜天然有机材料中细胞外电子传递(EET)功能的分布尚未得到探索。在本研究中,我们首次使用厌氧五氯苯酚脱氯菌群落揭示了蛋白质材料中 EET 功能的广泛分布,该群落的活性依赖于 EETM。在 11 种天然有机材料和 13 种对照化合物中,有 7 种蛋白质有机材料(白蛋白、牛肉、牛奶、猪肉、大豆、蛋黄和牛血清白蛋白)作为 EETM 发挥作用。碳水化合物和脂质不作为 EETM 发挥作用。比较光谱分析表明,β-折叠二级结构是蛋白质作为 EETM 发挥作用的必要条件,而与水溶性无关。还原态硫的高含量可能与 EET 功能有关。尽管蛋白质材料迄今为止被认为只是营养物质,但这些材料中 EET 功能的广泛分布为它们对生物地球化学循环的影响提供了新的见解。此外,EET 功能的结构信息可以为开发环保型 EETM 提供科学依据。

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