Key Laboratory of Yangtze River Water Environment, Ministry of Education, College of Environmental Science and Engineering, Tongji University, 1239 Siping Road, Shanghai 200092, PR China.
Department of Molecular Biosciences and Bioengineering, University of Hawai'i at Mānoa, 1955 East-West Road, Agricultural Science Building 218, Honolulu, HI 96822, USA.
Bioresour Technol. 2022 Sep;360:127558. doi: 10.1016/j.biortech.2022.127558. Epub 2022 Jun 30.
Ammonia stress is a commonly encountered issue in anaerobic digestion (AD) process when treating proteinaceous substrates. The enhanced relationship between syntrophic bacteria and methanogens triggered by interspecies electron transfer (IET) stimulation is one of the potential mechanisms for an improved methane yield from the AD plant under ammonia-stressed condition. There is, however, lack of synthesized information on the mechanistic understanding of IET facilitation in the ammonia-stressed AD processes. This review critically discusses recovery of AD system from ammonia-stressed condition, focusing on H transfer, redox compound-mediated IET, and conductive material-induced direct IET. The effects and the associated mechanisms of IET stimulation on mitigating ammonia stress and promoting methanogenesis were elucidated. Finally, prospects and challenges of IET stimulation were critically discussed. This review highlights, for the first time, the critical role of IET stimulation in enhancing AD process under ammonia-stressed condition.
氨胁迫是在处理蛋白类底物的厌氧消化(AD)过程中经常遇到的问题。种间电子转移(IET)刺激引发的协同细菌和产甲烷菌之间的增强关系是在氨胁迫条件下提高 AD 厂甲烷产量的潜在机制之一。然而,对于氨胁迫 AD 过程中 IET 促进的机制理解,缺乏综合信息。本综述从氨胁迫条件下 AD 系统的恢复角度,重点讨论 H 转移、氧化还原化合物介导的 IET 和导电材料诱导的直接 IET,批判性地讨论了氨胁迫 AD 过程中 IET 促进的机制。阐述了 IET 刺激减轻氨胁迫和促进产甲烷作用的效果及其相关机制。最后,批判性地讨论了 IET 刺激的前景和挑战。本综述首次强调了 IET 刺激在增强氨胁迫条件下 AD 过程中的关键作用。