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On the origins of oxygenic photosynthesis and aerobic respiration in Cyanobacteria.蓝细菌中需氧呼吸和产氧光合作用的起源。
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细胞色素 bd 氧还原酶超家族的进化和古菌中 CydAA'的功能。

Evolution of the cytochrome bd oxygen reductase superfamily and the function of CydAA' in Archaea.

机构信息

Division of Biology and Biological Engineering, California Institute of Technology, Pasadena, CA, USA.

Department of Biochemistry, University of Illinois, Urbana-Champaign, Urbana, IL, USA.

出版信息

ISME J. 2021 Dec;15(12):3534-3548. doi: 10.1038/s41396-021-01019-4. Epub 2021 Jun 18.

DOI:10.1038/s41396-021-01019-4
PMID:34145390
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8630170/
Abstract

Cytochrome bd-type oxygen reductases (cytbd) belong to one of three enzyme superfamilies that catalyze oxygen reduction to water. They are widely distributed in Bacteria and Archaea, but the full extent of their biochemical diversity is unknown. Here we used phylogenomics to identify three families and several subfamilies within the cytbd superfamily. The core architecture shared by all members of the superfamily consists of four transmembrane helices that bind two active site hemes, which are responsible for oxygen reduction. While previously characterized cytochrome bd-type oxygen reductases use quinol as an electron donor to reduce oxygen, sequence analysis shows that only one of the identified families has a conserved quinol binding site. The other families are missing this feature, suggesting that they use an alternative electron donor. Multiple gene duplication events were identified within the superfamily, resulting in significant evolutionary and structural diversity. The CydAA' cytbd, found exclusively in Archaea, is formed by the co-association of two superfamily paralogs. We heterologously expressed CydAA' from Caldivirga maquilingensis and demonstrated that it performs oxygen reduction with quinol as an electron donor. Strikingly, CydAA' is the first isoform of cytbd containing only b-type hemes shown to be active when isolated from membranes, demonstrating that oxygen reductase activity in this superfamily is not dependent on heme d.

摘要

细胞色素 bd 型氧还原酶(cytbd)属于催化氧还原为水的三种酶超家族之一。它们广泛分布于细菌和古菌中,但它们的生化多样性的全貌尚不清楚。在这里,我们使用系统发生基因组学来鉴定 cytbd 超家族中的三个家族和几个亚家族。该超家族所有成员共有的核心结构由四个跨膜螺旋组成,这些螺旋结合两个活性位点血红素,负责氧还原。虽然先前表征的细胞色素 bd 型氧还原酶使用醌作为电子供体来还原氧,但序列分析表明,只有鉴定出的一个家族具有保守的醌结合位点。其他家族则缺少这个特征,表明它们使用替代电子供体。在超家族内鉴定出多个基因重复事件,导致了显著的进化和结构多样性。仅在古菌中发现的 CydAA' cytbd 由两个超家族同源物的共同关联形成。我们异源表达了来自 Caldivirga maquilingensis 的 CydAA',并证明它使用醌作为电子供体进行氧还原。引人注目的是,CydAA' 是第一个仅包含 b 型血红素的 cytbd 同工型,当从膜中分离出来时表现出活性,这表明该超家族中的氧还原酶活性不依赖于血红素 d。