INRAE, Univ Montpellier, LBE, Narbonne, France.
Appl Microbiol Biotechnol. 2022 Jan;106(2):865-876. doi: 10.1007/s00253-021-11736-7. Epub 2021 Dec 23.
Recently, a study showed that glycerol fermentation by Clostridium pasteurianum could be metabolically redirected when the electroactive bacterium Geobacter sulfurreducens was added in the culture. It was assumed that this metabolic shift of the fermentative species resulted from an interspecies electron transfer. The aim of this study was to find out the mechanisms used for this interaction and how they affect the metabolism of C. pasteurianum. To get insights into the mechanisms involved, several coculture setups and RNA sequencing with differential expression analysis were performed. As a result, a putative interaction model was proposed: G. sulfurreducens produces cobamide molecules that possibly modify C. pasteurianum metabolic pathway at the key enzyme glycerol dehydratase, and affect its vanadium nitrogenase expression. In addition, the results suggested that G. sulfurreducens' electrons could enter C. pasteurianum through its transmembrane flavin-bound polyferredoxin and cellular cytochrome b5-rubredoxin interplay, putatively reinforcing the metabolic shift. Unravelling the mechanisms behind the interaction between fermentative and electroactive bacteria helps to better understand the role of bacterial interactions in fermentation setups. KEY POINTS: • C. pasteurianum-G. sulfurreducens interaction inducing a metabolic shift is mediated • C. pasteurianum's metabolic shift in coculture might be induced by cobamides • Electrons possibly enter C. pasteurianum through a multiflavin polyferredoxin.
最近的一项研究表明,当在培养物中添加电活性细菌脱硫弧菌时,丙酮丁醇梭菌的甘油发酵可以在代谢上重新定向。据推测,这种发酵物种的代谢转变是由于种间电子转移。本研究的目的是找出用于这种相互作用的机制以及它们如何影响丙酮丁醇梭菌的代谢。为了深入了解所涉及的机制,进行了几种共培养设置和 RNA 测序及差异表达分析。结果提出了一个假设的相互作用模型:脱硫弧菌产生钴胺分子,可能在关键酶甘油脱水酶上修饰丙酮丁醇梭菌的代谢途径,并影响其钒氮酶的表达。此外,结果表明,脱硫弧菌的电子可能通过其跨膜黄素结合多铁氧还蛋白和细胞色素 b5-细胞色素 c5 相互作用进入丙酮丁醇梭菌,推测这加强了代谢转变。揭示发酵细菌和电活性细菌之间相互作用的机制有助于更好地理解细菌相互作用在发酵设置中的作用。要点:
• C. pasteurianum-G. sulfurreducens 相互作用诱导代谢转变是由媒介介导的
• 共培养中 C. pasteurianum 的代谢转变可能是由钴胺引起的
• 电子可能通过多黄素结合多铁氧还蛋白进入 C. pasteurianum