Johannes Eberhard Reiner, Benjamin Korth, Miriam Edel
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Extensively studied as lithoautotrophic production host, <i>C. necator</i> already offers a broad arsenal of genetic tools. In contrast, mechanistical knowledge about the recently discovered <i>Kyrpidia spormannii</i> is limited, but this species shows remarkable growth when cultivated as cathodic biofilm in bioelectrochemical systems. In addition, first experiments indicate a low energy demand for biomass production, which is in the order of magnitude of gas fermentation with <i>C. necator</i> or heterotrophic and methanotrophic technologies. Still, many aspects of the electrochemical cultivation of <i>K. spormannii</i> need to be better understood and rigorously improved to be a competitive technology in the making, including electron transfer and microbial kinetics, cultivation conditions, mass and energy balances, and reactor design.</p>","PeriodicalId":142,"journal":{"name":"ChemElectroChem","volume":"11 20","pages":""},"PeriodicalIF":3.5000,"publicationDate":"2024-09-06","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://onlinelibrary.wiley.com/doi/epdf/10.1002/celc.202400397","citationCount":"0","resultStr":"{\"title\":\"Oxygen In The Mix: Is Oxic Microbial Electrosynthesis A Potential Alternative For Biomass Production?\",\"authors\":\"Johannes Eberhard Reiner, Benjamin Korth, Miriam Edel\",\"doi\":\"10.1002/celc.202400397\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p>Oxic microbial electrosynthesis (oMES) allows the utilization of renewable electricity and industrial gas streams containing CO<sub>2</sub> and O<sub>2</sub> for biomass production by cultivating aerobic, autotrophic, hydrogen-oxidizing bacteria, commonly known as Knallgas bacteria. oMES is likely not a direct competitor to conventional anoxic microbial electrosynthesis as harnessing aerobic hydrogen-oxidizing bacteria depends on energetically inefficient assimilatory CO<sub>2</sub> reduction pathways. 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引用次数: 0
摘要
缺氧微生物电合成(oMES)可通过培养好氧、自养、氢氧化细菌(俗称 Knallgas 细菌),利用含有 CO2 和 O2 的可再生电力和工业气体流生产生物质。不过,从有限的土地使用和廉价可再生能源的角度来看,这可能是传统生物质生产的一种补充方法。特征最明显的 Knallgas 细菌是坏疽铜绿菌(Cupriavidus necator)。作为石生自养型生产宿主,C. necator 已被广泛研究,并提供了大量遗传工具。相比之下,人们对最近发现的柯氏藻菌(Kyrpidia spormannii)的机械知识还很有限,但该菌种在生物电化学系统中作为阴极生物膜培养时显示出显著的生长能力。此外,初步实验表明,生物质生产对能量的需求较低,与使用 C. necator 或异养型和甲烷养型技术进行气体发酵的数量级相当。不过,要使 K. spormannii 的电化学培养技术成为一项具有竞争力的技术,还需要更好地理解和严格改进许多方面,包括电子传递和微生物动力学、培养条件、质量和能量平衡以及反应器设计。
Oxygen In The Mix: Is Oxic Microbial Electrosynthesis A Potential Alternative For Biomass Production?
Oxic microbial electrosynthesis (oMES) allows the utilization of renewable electricity and industrial gas streams containing CO2 and O2 for biomass production by cultivating aerobic, autotrophic, hydrogen-oxidizing bacteria, commonly known as Knallgas bacteria. oMES is likely not a direct competitor to conventional anoxic microbial electrosynthesis as harnessing aerobic hydrogen-oxidizing bacteria depends on energetically inefficient assimilatory CO2 reduction pathways. However, it might be a complementary approach to classical biomass production from the perspective of limited land use and the availability of cheap renewable energy. The best characterized Knallgas bacterium is Cupriavidus necator. Extensively studied as lithoautotrophic production host, C. necator already offers a broad arsenal of genetic tools. In contrast, mechanistical knowledge about the recently discovered Kyrpidia spormannii is limited, but this species shows remarkable growth when cultivated as cathodic biofilm in bioelectrochemical systems. In addition, first experiments indicate a low energy demand for biomass production, which is in the order of magnitude of gas fermentation with C. necator or heterotrophic and methanotrophic technologies. Still, many aspects of the electrochemical cultivation of K. spormannii need to be better understood and rigorously improved to be a competitive technology in the making, including electron transfer and microbial kinetics, cultivation conditions, mass and energy balances, and reactor design.
期刊介绍:
ChemElectroChem is aimed to become a top-ranking electrochemistry journal for primary research papers and critical secondary information from authors across the world. The journal covers the entire scope of pure and applied electrochemistry, the latter encompassing (among others) energy applications, electrochemistry at interfaces (including surfaces), photoelectrochemistry and bioelectrochemistry.