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Carbon monoxide-dependent transcriptional changes in a thermophilic, carbon monoxide-utilizing, hydrogen-evolving bacterium Calderihabitans maritimus KKC1 revealed by transcriptomic analysis

机译:通过转录组分析显示出嗜热,一氧化碳利用,利用氢化细菌的氢气演化细菌的氢气进化的细菌的氢气演化细菌的一氧化碳的转录变化

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Calderihabitans maritimus KKC1 is a thermophilic, carbon monoxide (CO)-utilizing, hydrogen-evolving bacterium that harbors seven cooS genes for anaerobic CO dehydrogenases and six hyd genes for [NiFe] hydrogenases and capable of using a variety of electron acceptors coupled to CO oxidation. To understand the relationships among these unique features and the transcriptional adaptation of the organism to CO, we performed a transcriptome analysis of C. maritimus KKC1 grown under 100% CO and N-2 conditions. Of its 3114 genes, 58 and 32 genes were significantly upregulated and downregulated in the presence of CO, respectively. A cooS-ech gene cluster, an "orphan" cooS gene, and bidirectional hyd genes were upregulated under CO, whereas hydrogen-uptake hyd genes were downregulated. Transcriptional changes in anaerobic respiratory genes supported the broad usage of electron acceptors in C. maritimus KKC1 under CO metabolism. Overall, the majority of the differentially expressed genes were oxidoreductase-like genes, suggesting metabolic adaptation to the cellular redox change upon CO oxidation. Moreover, our results suggest a transcriptional response mechanism to CO that involves multiple transcription factors, as well as a CO-responsive transcriptional activator (CooA). Our findings shed light on the diverse mechanisms for transcriptional and metabolic adaptations to CO in CO-utilizing and hydrogen-evolving bacteria.
机译:Calderihabitans Maritimus KKC1是嗜热,一氧化碳(CO) - 酸化细菌,氢​​化细菌,用于厌氧CO脱氢酶的七个CoOS基因和用于[NiFE]氢酶的六种HYD基因,并能够使用耦合到CO氧化的各种电子受体。 。为了了解这些独特特征和生物体的转录适应的关系,我们在100%CO和N-2条件下进行了C. Maritimus KKC1的转录组分析。其3114基因,58和32个基因分别在CO的存在下显着上调和下调。在CO中上调了COOS-ECH基因簇,“孤橙”COO基因和双向水分基因,而氢摄取水基因被下调。厌氧呼吸基因的转录变化支持CO代谢下C.Maritimus KKC1中的电子受体的广泛使用。总体而言,大多数差异表达基因是氧化还原酶样基因,表明对CO氧化时的细胞氧化还原变化的代谢适应。此外,我们的结果表明对涉及多种转录因子的CO的转录反应机制,以及共响应转录激活剂(COOA)。我们的研究结果阐明了在共同利用和氢化细菌中的转录和代谢适应的多样化机制。

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