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嗜酸氧化亚铁硫杆菌中内源性底物氧化的电子传递途径。

Electron transport pathways for the oxidation of endogenous substrate(s) in Acidithiobacillus ferrooxidans.

作者信息

Chen Yongqiang, Suzuki Isamu

机构信息

Department of Microbiology, University of Manitoba, Winnipeg, Canada.

出版信息

Can J Microbiol. 2006 Apr;52(4):317-27. doi: 10.1139/w05-128.

Abstract

Oxidation of endogenous substrate(s) of Acidithiobacillus ferrooxidans with O2 or Fe3+ as electron acceptor was studied in the presence of uncouplers and electron transport inhibitors. Endogenous substrate was oxidized with a respiratory quotient (CO2 produced/O2 consumed) of 1.0, indicating its carbohydrate nature. The oxidation was inhibited by complex I inhibitors (rotenone, amytal, and piericidin A) only partially, but piericidin A inhibited the oxidation with Fe3+ nearly completely. The oxidation was stimulated by uncouplers, and the stimulated activity was more sensitive to inhibition by complex I inhibitors. HQNO (2-heptyl-4-hydroxyquinoline N-oxide) also stimulated the oxidation, and the stimulated respiration was more sensitive to KCN inhibition than uncoupler stimulated respiration. Fructose, among 20 sugars and sugar alcohols including glucose and mannose, was oxidized with a CO2/O2 ratio of 1.0 by the organism. Iron chelators in general stimulated endogenous respiration, but some of them reduced Fe3+ chemically, introducing complications. The results are discussed in view of a branched electron transport system of the organism and its possible control.

摘要

在解偶联剂和电子传递抑制剂存在的情况下,研究了嗜酸氧化亚铁硫杆菌以内源底物,以氧气或三价铁作为电子受体的氧化作用。内源底物以呼吸商(产生的二氧化碳/消耗的氧气)为1.0进行氧化,表明其碳水化合物性质。氧化作用仅被复合体I抑制剂(鱼藤酮、戊巴比妥和杀粉蝶菌素A)部分抑制,但杀粉蝶菌素A几乎完全抑制了以三价铁为电子受体的氧化作用。解偶联剂刺激了氧化作用,且刺激后的活性对复合体I抑制剂的抑制更敏感。2-庚基-4-羟基喹啉N-氧化物(HQNO)也刺激了氧化作用,并使刺激后的呼吸作用比解偶联剂刺激的呼吸作用对氰化钾抑制更敏感。在包括葡萄糖和甘露糖在内的20种糖和糖醇中,果糖被该生物体以二氧化碳/氧气比率为1.0进行氧化。一般来说,铁螯合剂刺激内源呼吸作用,但其中一些会化学还原三价铁,从而带来复杂性。鉴于该生物体的分支电子传递系统及其可能的调控,对结果进行了讨论。

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