Universidad de Alcalá, Madrid, Spain.
Nanoelectra, Madrid, Spain.
Microb Biotechnol. 2023 Mar;16(3):569-578. doi: 10.1111/1751-7915.14190. Epub 2022 Dec 19.
Purple phototrophic bacteria are one of the main actors in chemolithotrophic carbon fixation and, therefore, fundamental in the biogeochemical cycle. These microbes are capable of using insoluble electron donors such as ferrous minerals or even carbon-based electrodes. Carbon fixation through extracellular electron uptake places purple phototrophic bacteria in the field of microbial electrosynthesis as key carbon capturing microorganisms. In this work we demonstrate biomass production dominated by purple phototrophic bacteria with a cathode (-0.6 V vs. Ag/AgCl) as electron donor. In addition, we compared the growth and microbial population structure with ferrous iron as the electron donor. We detect interaction between the cathode and the consortium showing a midpoint potential of 0.05 V (vs. Ag/AgCl). Microbial community analyses revealed different microbial communities depending on the electron donor, indicating different metabolic interactions. Electrochemical measurements together with population analyses point to Rhodopseudomonas genus as the key genus in the extracellular electron uptake. Furthermore, the genera Azospira and Azospirillum could play a role in the photoelectrotrophic consortium.
紫色光合细菌是化能自养碳固定的主要参与者之一,因此在生物地球化学循环中起着基础性作用。这些微生物能够利用不溶性电子供体,如亚铁矿物,甚至基于碳的电极。通过细胞外电子摄取进行碳固定,使紫色光合细菌成为微生物电化学合成中关键的碳捕获微生物。在这项工作中,我们证明了以阴极(相对于 Ag/AgCl 为-0.6 V)作为电子供体的紫色光合细菌主导的生物量生产。此外,我们比较了以亚铁作为电子供体的生长和微生物种群结构。我们检测到阴极和联合体之间的相互作用,显示出 0.05 V(相对于 Ag/AgCl)的中点电位。微生物群落分析表明,电子供体的不同,微生物群落也不同,表明代谢相互作用不同。电化学测量和种群分析表明,Rhodopseudomonas 属是细胞外电子摄取的关键属。此外,Azospira 和 Azospirillum 属可能在光电协同联合体中发挥作用。