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Breathing air to save energy – new insights into the ecophysiological role of high‐affinity NiFe‐hydrogenase in Streptomyces avermitilis

机译:呼吸空气以节省能源-高亲和力NiFe-加氢酶在阿维链霉菌中的生理生态作用的新见解

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摘要

The Streptomyces avermitilis genome encodes a putative high‐affinity [NiFe]‐hydrogenase conferring the ability to oxidize tropospheric H2 in mature spores. Here, we used a combination of transcriptomic and mutagenesis approaches to shed light on the potential ecophysiological role of the enzyme. First, S. avermitilis was either exposed to low or hydrogenase‐saturating levels of H2 to investigate the impact of H2 on spore transcriptome. In total, 1293 genes were differentially expressed, with 1127 and 166 showing lower and higher expression under elevated H2 concentration, respectively. High H2 exposure lowered the expression of the Sec protein secretion pathway and ATP‐binding cassette‐transporters, with increased expression of genes encoding proteins directing carbon metabolism toward sugar anabolism and lower expression of NADH dehydrogenase in the respiratory chain. Overall, the expression of relA responsible for the synthesis of the pleiotropic alarmone ppGpp decreased upon elevated H2 exposure, which likely explained the reduced expression of antibiotic synthesis and stress response genes. Finally, deletion of hhySL genes resulted in a loss of H2 uptake activity and a dramatic loss of viability in spores. We propose that H2 is restricted to support the seed bank of Streptomyces under a unique survival–mixotrophic energy mode and discuss important ecological implications of this finding.
机译:阿维链霉菌基因组编码一种假定的高亲和力[NiFe]-氢化酶,赋予其成熟孢子中对流层H2氧化的能力。在这里,我们结合了转录组学和诱变学方法,以阐明该酶的潜在生态生理作用。首先,将阿维链霉菌暴露于低水平或氢化酶饱和水平的H2中,以研究H2对孢子转录组的影响。总共,差异表达了1293个基因,在升高的H2浓度下,分别有1127个和166个表达较低和较高的表达。高H2暴露降低了Sec蛋白分泌途径和ATP结合盒转运蛋白的表达,并增加了将碳代谢导向糖代谢的蛋白质编码基因的表达,并降低了呼吸链中NADH脱氢酶的表达。总的来说,负责氢离子暴露的多效性警报素ppGpp的合成的relA的表达在H2暴露增加时降低,这很可能解释了抗生素合成和应激反应基因表达的降低。最后,hhySL基因的缺失导致H2吸收活性的丧失和孢子活力的显着降低。我们建议限制H2以独特的生存-混合营养能量模式支持链霉菌的种子库,并讨论该发现的重要生态意义。

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