从工业铜生物浸出环境中分离出来的铁锈肽杆菌对硫酸盐的渗透反应

Dayana Arias, Víctor Zepeda, Ivan Nancucheo, Manuel Saldaña, Pedro A. Galleguillos
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引用次数: 0

摘要

铁和硫氧化微生物在一些自然和工业过程中发挥着重要作用。Leptospirillum (L.) ferriphilum 是一种铁氧化微生物,具有在极端酸性环境(包括堆生物沥滤过程、酸性矿井排水(AMD)和天然酸性水)中生长的出色适应能力。从智利北部的一个工业生物沥滤过程中分离出了一株 L. ferriphilum(IESL25)。该菌株在硫酸盐浓度不断增加的条件下生长,以评估蛋白质表达谱、细胞形状的变化,并确定潜在的兼容溶质分子。研究结果显示了三种蛋白质的变化:琥珀酰辅酶(SCoA)合成酶、异柠檬酸脱氢酶(IDH)和天冬氨酸半醛脱氢酶(ASD)。ASD 在合成兼容溶质埃克托因(ectoine)的过程中起着关键作用,通过基质辅助激光解吸/电离飞行时间质谱(MALDI-TOF)技术,埃克托因与羟基埃克托因被鉴定出来。IDH、SCoA 和埃克替因的产生之间的关系可能是由于 TCA 循环,在该循环中,这两种酶产生的代谢物可用作埃克替因生物合成的前体或中间体。此外,在硫酸盐胁迫条件下生长时,还观察到 L. ferriphilum IESL25 出现了独特的丝状细胞形态。这项研究为了解铁锈藻在硫酸盐含量较高的情况下可能做出的细胞反应提供了新的视角,硫酸盐含量较高的情况通常出现在硫化物矿物的生物沥滤或 AMD 环境中。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Osmotic response in Leptospirillum ferriphilum isolated from an industrial copper bioleaching environment to sulfate
Iron and sulfur-oxidizing microorganisms play important roles in several natural and industrial processes. Leptospirillum (L.) ferriphilum, is an iron-oxidizing microorganism with a remarkable adaptability to thrive in extreme acidic environments, including heap bioleaching processes, acid mine drainage (AMD) and natural acidic water. A strain of L. ferriphilum (IESL25) was isolated from an industrial bioleaching process in northern Chile. This strain was challenged to grow at increasing concentrations of sulfate in order to assess changes in protein expression profiles, cells shape and to determine potential compatible solute molecules. The results unveiled changes in three proteins: succinyl CoA (SCoA) synthetase, isocitrate dehydrogenase (IDH) and aspartate semialdehyde dehydrogenase (ASD); which were notably overexpressed when the strain grew at elevated concentrations of sulfate. ASD plays a pivotal role in the synthesis of the compatible solute ectoine, which was identified along with hydroxyectoine by using matrix-assisted laser desorption/ionization-time of flight mass spectrometry (MALDI-TOF). The relationship between IDH, SCoA, and ectoine production could be due to the TCA cycle, in which both enzymes produce metabolites that can be utilized as precursors or intermediates in the biosynthesis of ectoine. In addition, distinct filamentous cellular morphology in L. ferriphilum IESL25 was observed when growing under sulfate stress conditions. This study highlights a new insight into the possible cellular responses of L. ferriphilum under the presence of high sulfate levels, commonly found in bioleaching of sulfide minerals or AMD environments.
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