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氨发酵,一种真菌对硝酸盐的新型缺氧代谢方式。

Ammonia fermentation, a novel anoxic metabolism of nitrate by fungi.

作者信息

Zhou Zhemin, Takaya Naoki, Nakamura Akira, Yamaguchi Masashi, Takeo Kanji, Shoun Hirofumi

机构信息

Institute of Applied Biochemistry, University of Tsukuba, Tsukuba, Ibaraki 305-8572, Japan.

出版信息

J Biol Chem. 2002 Jan 18;277(3):1892-6. doi: 10.1074/jbc.M109096200. Epub 2001 Nov 16.

Abstract

The induction of fungal denitrification by Fusarium oxysporum requires a minimal amount of O(2), although excess O(2) completely represses this process (Zhou, Z., Takaya, N., Sakairi, M. A. C., and Shoun, H. (2001) Arch. Microbiol. 175, 19-25). Here we describe another metabolic mechanism of nitrate in fungal cells, termed ammonia fermentation, that supports growth under conditions more anoxic than those of denitrification. The novel nitrate metabolism of eukaryotes consists of the reduction of nitrate to ammonium coupled with the catabolic oxidation of electron donors to acetate and substrate-level phosphorylation. F. oxysporum thus has two pathways of dissimilatory nitrate reduction that are alternatively expressed in response to environmental O(2) tension. F. oxysporum prefers O(2) respiration when the O(2) supply is sufficient. We discovered that this fungus is the first eukaryotic, facultative anaerobe known to express one of three distinct metabolic energy mechanisms closely depending on environmental O(2) tension. We also showed that ammonia fermentation occurs in many other fungi that are common in soil, suggesting that facultative anaerobes are widely distributed among fungi that have been considered aerobic organisms.

摘要

尖孢镰刀菌诱导真菌反硝化作用需要少量的氧气,尽管过量的氧气会完全抑制这一过程(Zhou, Z., Takaya, N., Sakairi, M. A. C., and Shoun, H. (2001) Arch. Microbiol. 175, 19 - 25)。在此,我们描述了真菌细胞中硝酸盐的另一种代谢机制,称为氨发酵,它在比反硝化作用更缺氧的条件下支持生长。真核生物的这种新型硝酸盐代谢包括将硝酸盐还原为铵,同时将电子供体分解代谢氧化为乙酸盐和底物水平磷酸化。因此,尖孢镰刀菌具有两种异化硝酸盐还原途径,它们会根据环境氧气张力交替表达。当氧气供应充足时,尖孢镰刀菌更喜欢有氧呼吸。我们发现这种真菌是已知的第一种真核兼性厌氧菌,它表达三种不同的代谢能量机制之一,且该机制紧密依赖于环境氧气张力。我们还表明,氨发酵发生在许多其他常见于土壤中的真菌中,这表明兼性厌氧菌广泛分布于那些被认为是需氧生物的真菌中。

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