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厌氧氨氧化菌的膜结合电子传递系统:一种蛋白质复合物组分析。

Membrane-bound electron transport systems of an anammox bacterium: A complexome analysis.

作者信息

de Almeida Naomi M, Wessels Hans J C T, de Graaf Rob M, Ferousi Christina, Jetten Mike S M, Keltjens Jan T, Kartal Boran

机构信息

Department of Microbiology, Institute of Water and Wetland Research, Radboud University Nijmegen, 6525 AJ Nijmegen, The Netherlands.

Nijmegen Center for Mitochondrial Disorders, Radboud Proteomics Center, Translational Metabolic Laboratory, Department of Laboratory Medicine, Radboudumc, Geert Grooteplein-Zuid 10, 6525 GA Nijmegen, The Netherlands.

出版信息

Biochim Biophys Acta. 2016 Oct;1857(10):1694-704. doi: 10.1016/j.bbabio.2016.07.006. Epub 2016 Jul 25.

Abstract

Electron transport, or oxidative phosphorylation, is one of the hallmarks of life. To this end, prokaryotes evolved a vast variety of protein complexes, only a small part of which have been discovered and studied. These protein complexes allow them to occupy virtually every ecological niche on Earth. Here, we applied the method of proteomics-based complexome profiling to get a better understanding of the electron transport systems of the anaerobic ammonium-oxidizing (anammox) bacteria, the N2-producing key players of the global nitrogen cycle. By this method nearly all respiratory complexes that were previously predicted from genome analysis to be involved in energy and cell carbon fixation were validated. More importantly, new and unexpected ones were discovered. We believe that complexome profiling in concert with (meta)genomics offers great opportunities to expand our knowledge on bacterial respiratory processes at a rapid and massive pace, in particular in new and thus far poorly investigated non-model and environmentally-relevant species.

摘要

电子传递,即氧化磷酸化,是生命的标志之一。为此,原核生物进化出了各种各样的蛋白质复合物,其中只有一小部分被发现和研究过。这些蛋白质复合物使它们几乎能够占据地球上的每一个生态位。在这里,我们应用基于蛋白质组学的复合物组分析方法,以更好地了解厌氧氨氧化(anammox)细菌的电子传递系统,该细菌是全球氮循环中产生N2的关键参与者。通过这种方法,几乎所有先前从基因组分析预测参与能量和细胞碳固定的呼吸复合物都得到了验证。更重要的是,还发现了新的和意想不到的复合物。我们相信,复合物组分析与(宏)基因组学相结合,为我们快速、大规模地扩展对细菌呼吸过程的认识提供了巨大机会,特别是在新的、迄今研究较少的非模式和与环境相关的物种中。

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