Muter Olga
Faculty of Biology, University of Latvia, LV-1004 Riga, Latvia.
Microorganisms. 2023 Mar 9;11(3):710. doi: 10.3390/microorganisms11030710.
Bioaugmentation is widely used in soil bioremediation, wastewater treatment, and air biofiltration. The addition of microbial biomass to contaminated areas can considerably improve their biodegradation performance. Nevertheless, analyses of large data sets on the topic available in literature do not provide a comprehensive view of the mechanisms responsible for inoculum-assisted stimulation. On the one hand, there is no universal mechanism of bioaugmentation for a broad spectrum of environmental conditions, contaminants, and technology operation concepts. On the other hand, further analyses of bioaugmentation outcomes under laboratory conditions and in the field will strengthen the theoretical basis for a better prediction of bioremediation processes under certain conditions. This review focuses on the following aspects: (i) choosing the source of microorganisms and the isolation procedure; (ii) preparation of the inoculum, e.g., cultivation of single strains or consortia, adaptation; (iii) application of immobilised cells; (iv) application schemes for soil, water bodies, bioreactors, and hydroponics; and (v) microbial succession and biodiversity. Reviews of recent scientific papers dating mostly from 2022-2023, as well as our own long-term studies, are provided here.
生物强化技术广泛应用于土壤生物修复、废水处理和空气生物过滤。向污染区域添加微生物生物质可以显著提高其生物降解性能。然而,对文献中现有该主题的大数据集分析并未全面揭示接种物辅助刺激的机制。一方面,对于广泛的环境条件、污染物和技术操作概念,不存在通用的生物强化机制。另一方面,在实验室条件和现场进一步分析生物强化结果,将加强理论基础,以便更好地预测特定条件下的生物修复过程。本综述聚焦于以下几个方面:(i)微生物来源的选择和分离程序;(ii)接种物的制备,例如单菌株或菌群的培养、适应性培养;(iii)固定化细胞的应用;(iv)土壤、水体、生物反应器和水培的应用方案;以及(v)微生物演替和生物多样性。本文提供了主要来自2022年至2023年近期科学论文的综述以及我们自己的长期研究成果。