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Methanogens: biochemical background and biotechnological applications

机译:产甲烷菌:生化背景和生物技术应用

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摘要

Since fossil sources for fuel and platform chemicals will become limited in the near future, it is important to develop new concepts for energy supply and production of basic reagents for chemical industry. One alternative to crude oil and fossil natural gas could be the biological conversion of CO_(2)or small organic molecules to methane via methanogenic archaea. This process has been known from biogas plants, but recently, new insights into the methanogenic metabolism, technical optimizations and new technology combinations were gained, which would allow moving beyond the mere conversion of biomass. In biogas plants, steps have been undertaken to increase yield and purity of the biogas, such as addition of hydrogen or metal granulate. Furthermore, the integration of electrodes led to the development of microbial electrosynthesis (MES). The idea behind this technique is to use CO_(2)and electrical power to generate methane via the microbial metabolism. This review summarizes the biochemical and metabolic background of methanogenesis as well as the latest technical applications of methanogens. As a result, it shall give a sufficient overview over the topic to both, biologists and engineers handling biological or bioelectrochemical methanogenesis.
机译:由于燃料和平台化学品的化石来源将在不久的将来变得有限,因此开发新的能源供应和化学工业基本试剂生产概念非常重要。原油和化石天然气的一种替代方法可能是通过产甲烷古细菌将CO_(2)或小的有机分子生物转化为甲烷。沼气厂已经知道了这一过程,但是最近,人们对产甲烷代谢,技术优化和新技术组合有了新的见解,这将使人们不再仅仅局限于生物质的转化。在沼气厂中,已经采取步骤来增加沼气的产率和纯度,例如添加氢气或金属颗粒。此外,电极的整合导致了微生物电合成(MES)的发展。该技术背后的想法是利用CO_(2)和电力通过微生物代谢产生甲烷。这篇综述总结了甲烷生成的生化和代谢背景以及甲烷生成素的最新技术应用。因此,它应对从事生物学或生物电化学甲烷生成的生物学家和工程师都提供足够的概述。

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