School of Resource and Environmental Engineering, Anhui University, Hefei, 230601, China.
Anhui Province Key Laboratory of Wetland Ecosystem Protection and Restoration, Hefei, 230601, China.
Appl Microbiol Biotechnol. 2020 Jun;104(12):5579-5591. doi: 10.1007/s00253-020-10608-w. Epub 2020 Apr 17.
Shewanella oneidensis MR-1 is a potent hydrogen producer in the deficiency of exogenous electron acceptors. The electron transfer pathway for hydrogen production remains unclear, although enzymes for hydrogen production have been identified in S. oneidensis MR-1. In this study, we investigated the electron transfer pathway from formate to hydrogen, given that formate is commonly a key chemical for bacterial hydrogen production. We revealed that two formate dehydrogenases FdhA1B1C1 and FdhA2B2C2, rather than FdnGHI, played a dominant role in formate-driven hydrogen production. Menaquinone was indispensable for the electron transfer from formate to hydrogen, which excluded the presence of formate hydrogen-lyase in S. oneidensis MR-1. A previously proposed formate dehydrogenase subunit HydC was identified as a menaquinone-binding subunit of [FeFe] hydrogenase HydAB, and the hydABC operon is conserved in bacteria living in diverse environments. A formate exporter FocA and transcriptional regulator FhlA were identified for their effect on formate metabolism and hydrogen production. FhlA positively affected the metabolism of formate and hydrogen by regulating the expression of fdhA2B2C2, fdnGHI, focA, and dld-II. Overall, the electron transfer pathway deciphered in this work will facilitate the improvement of biohydrogen production by S. oneidensis MR-1.Key Points• The electron transfer pathway from formate to hydrogen in MR-1 is deciphered.• Menaquinone is indispensable for hydrogen production.• A cytochrome b subunit transfers electrons from menaquinone to [FeFe] hydrogenase.
希瓦氏菌属(Shewanella oneidensis)MR-1 在缺乏外源电子受体时是一种有效的产氢菌。尽管已经在希瓦氏菌属(Shewanella oneidensis)MR-1 中鉴定出了产氢酶,但产氢的电子传递途径仍不清楚。在这项研究中,我们研究了从甲酸盐到氢气的电子传递途径,因为甲酸盐通常是细菌产氢的关键化学物质。我们揭示了两种甲酸盐脱氢酶 FdhA1B1C1 和 FdhA2B2C2,而不是 FdnGHI,在甲酸盐驱动的产氢中起主导作用。甲烯醌对于甲酸盐到氢气的电子传递是必不可少的,这排除了希瓦氏菌属(Shewanella oneidensis)MR-1 中存在甲酸盐氢裂解酶。先前提出的甲酸盐脱氢酶亚基 HydC 被鉴定为 [FeFe]氢化酶 HydAB 的甲烯醌结合亚基,并且该 hydABC 操纵子在生活在不同环境中的细菌中是保守的。鉴定了一种甲酸盐外排蛋白 FocA 和转录调节因子 FhlA,以了解它们对甲酸盐代谢和产氢的影响。FhlA 通过调节 fdhA2B2C2、fdnGHI、focA 和 dld-II 的表达,积极影响甲酸盐和氢气的代谢。总的来说,这项工作中解析的电子传递途径将有助于提高希瓦氏菌属(Shewanella oneidensis)MR-1 的生物制氢效率。
关键点
• 解析了 MR-1 中甲酸盐到氢气的电子传递途径。
• 甲烯醌对于产氢是必不可少的。
• 细胞色素 b 亚基将电子从甲烯醌传递到 [FeFe]氢化酶。