College of Water Science, Beijing Normal University, Beijing 100875, China.
College of Water Science, Beijing Normal University, Beijing 100875, China.
Bioresour Technol. 2024 Jun;401:130686. doi: 10.1016/j.biortech.2024.130686. Epub 2024 Apr 8.
Although there are many microorganisms in nature, the limitations of isolation and cultivation conditions have restricted the development of artificial enhanced remediation technology using functional microbial communities. In this study, an integrated technology of Magnetic Nanoparticle-mediated Enrichment (MME) and Microfluidic Single Cell separation (MSC) that breaks through the bottleneck of traditional separation and cultivation techniques and can efficiently obtain more in situ functional microorganisms from the environment was developed. MME technology was first used to enrich rapidly growing active bacteria in the environment. Subsequently, MSC technology was applied to isolate and incubate functional bacterial communities in situ and validate the degradation ability of individual bacteria. As a result, this study has changed the order of traditional pure culture methods, which are first selected and then cultured, and provided a new method for obtaining non-culturable functional microorganisms.
尽管自然界中有许多微生物,但由于分离和培养条件的限制,利用功能微生物群落的人工强化修复技术的发展受到了限制。本研究开发了一种突破传统分离培养技术瓶颈的集成技术,即磁纳米粒子介导的富集(MME)和微流控单细胞分离(MSC),可从环境中高效获得更多原位功能微生物。首先利用 MME 技术快速富集环境中生长迅速的活性细菌。随后,应用 MSC 技术原位分离和培养功能细菌群落,并验证单个细菌的降解能力。因此,本研究改变了传统的纯培养方法的顺序,即先选择后培养,并为获得不可培养的功能微生物提供了一种新方法。