Swedish Centre for Resource Recovery, University of Borås, 50190 Borås, Sweden.
Microbiology Research Center, Pasteur Institute of Iran, Tehran, Iran.
Bioengineered. 2022 Mar;13(3):6521-6557. doi: 10.1080/21655979.2022.2035986.
In the past decades, considerable attention has been directed toward anaerobic digestion (AD), which is an effective biological process for converting diverse organic wastes into biogas, volatile fatty acids (VFAs), biohydrogen, etc. The microbial bioprocessing takes part during AD is of substantial significance, and one of the crucial approaches for the deep and adequate understanding and manipulating it toward different products is process microbiology. Due to highly complexity of AD microbiome, it is critically important to study the involved microorganisms in AD. In recent years, in addition to traditional methods, novel molecular techniques and meta-omics approaches have been developed which provide accurate details about microbial communities involved AD. Better understanding of process microbiomes could guide us in identifying and controlling various factors in both improving the AD process and diverting metabolic pathway toward production of selective bio-products. This review covers various platforms of AD process that results in different final products from microbiological point of view. The review also highlights distinctive interactions occurring among microbial communities. Furthermore, assessment of these communities existing in the anaerobic digesters is discussed to provide more insights into their structure, dynamics, and metabolic pathways. Moreover, the important factors affecting microbial communities in each platform of AD are highlighted. Finally, the review provides some recent applications of AD for the production of novel bio-products and deals with challenges and future perspectives of AD.
在过去几十年中,人们对厌氧消化(AD)给予了相当多的关注,它是一种将各种有机废物转化为沼气、挥发性脂肪酸(VFAs)、生物氢等的有效生物过程。AD 中的微生物生物处理过程具有重要意义,深入了解和操纵它以获得不同产品的关键方法之一是过程微生物学。由于 AD 微生物组高度复杂,因此研究 AD 中涉及的微生物至关重要。近年来,除了传统方法外,还开发了新的分子技术和宏基因组学方法,这些方法为 AD 中涉及的微生物群落提供了准确的详细信息。更好地了解过程微生物组可以指导我们识别和控制 AD 过程中的各种因素,从而提高 AD 过程的效率,并使代谢途径转向选择性生物产品的生产。本综述从微生物学的角度涵盖了导致不同最终产物的各种 AD 工艺平台。本综述还强调了微生物群落之间发生的独特相互作用。此外,还讨论了对存在于厌氧消化器中的这些群落的评估,以更深入地了解它们的结构、动态和代谢途径。此外,还强调了影响 AD 中每个平台中微生物群落的重要因素。最后,本综述提供了 AD 生产新型生物产品的一些最新应用,并探讨了 AD 的挑战和未来展望。