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An electron transfer flavoprotein is essential for viability and its depletion causes a rod-to-sphere change in Burkholderia cenocepacia

机译:电子转移黄酮是必不可少的生存力,其耗尽导致伯克德列伯群岛的棒 - 球形变化

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Essential gene studies often reveal novel essential functions for genes with dispensable homologues in other species. This is the case with the widespread family of electron transfer flavoproteins (ETFs), which are required for the metabolism of specific substrates or for symbiotic nitrogen fixation in some bacteria. Despite these non-essential functions high-throughput screens have identified ETFs as putatively essential in several species. In this study, we constructed a conditional expression mutant of one of the ETFs in Burkholderia cenocepacia, and demonstrated that its expression is essential for growth on both complex media and a variety of single-carbon sources. We further demonstrated that the two subunits EtfA and EtfB interact with each other, and that cells depleted of ETF are non-viable and lack redox potential. These cells also transition from the short rods characteristic of Burkholderia cenocepacia to small spheres independently of MreB. The putative membrane partner ETF dehydrogenase also induced the same rod-to-sphere change. We propose that the ETF of Burkholderia cenocepacia is a novel antibacterial target.
机译:基因研究通常会揭示其他物种中具有可分配同源物的基因的新基本功能。这种情况是具有广泛的电子转移黄酮蛋白(ETF)的情况,这是特定底物的代谢所必需的或用于一些细菌中的共生氮固定所必需的。尽管这些非基本功能,高吞吐量屏幕已识别出在几种物种中具有稳定必需的ETF。在这项研究中,我们构建了Burkhowderia Cenocepacia中的一种ETF的条件表达突变体,并表明其表达对于复杂培养基和各种单碳源的生长至关重要。我们进一步证明,两个亚基ETFA和ETFB彼此相互作用,并且该细胞耗尽ETF是不可行的并且缺乏氧化还原潜力。这些细胞还从伯克德列达群岛Cenocepacia的短杆转变为独立于MREB的小球体。推定的膜合作伙伴ETF脱氢酶也诱导相同的杆 - 球形变化。我们建议Burkholderia Cenocepacia的ETF是一种新型抗菌目标。

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