Jagmann Nina, Philipp Bodo
Universität Münster, Institut für Molekulare Mikrobiologie und Biotechnologie, Corrensstr. 3, D-48149 Münster, Germany.
Universität Münster, Institut für Molekulare Mikrobiologie und Biotechnologie, Corrensstr. 3, D-48149 Münster, Germany.
J Biotechnol. 2014 Dec 20;192 Pt B:293-301. doi: 10.1016/j.jbiotec.2014.11.005. Epub 2014 Nov 13.
In their natural habitats microorganisms live in multi-species communities, in which the community members exhibit complex metabolic interactions. In contrast, biotechnological production processes catalyzed by microorganisms are usually carried out with single strains in pure cultures. A number of production processes, however, may be more efficiently catalyzed by the concerted action of microbial communities. This review will give an overview of organismic interactions between microbial cells and of biotechnological applications of microbial communities. It focuses on synthetic microbial communities that consist of microorganisms that have been genetically engineered. Design principles for such synthetic communities will be exemplified based on plausible scenarios for biotechnological production processes. These design principles comprise interspecific metabolic interactions via cross-feeding, regulation by interspecific signaling processes via metabolites and autoinducing signal molecules, and spatial structuring of synthetic microbial communities. In particular, the implementation of metabolic interdependencies, of positive feedback regulation and of inducible cell aggregation and biofilm formation will be outlined. Synthetic microbial communities constitute a viable extension of the biotechnological application of metabolically engineered single strains and enlarge the scope of microbial production processes.
在其自然栖息地中,微生物生活在多物种群落中,群落成员之间表现出复杂的代谢相互作用。相比之下,由微生物催化的生物技术生产过程通常在纯培养物中的单一菌株中进行。然而,许多生产过程可能通过微生物群落的协同作用而更有效地催化。本综述将概述微生物细胞之间的生物体相互作用以及微生物群落的生物技术应用。它侧重于由经过基因工程改造的微生物组成的合成微生物群落。将基于生物技术生产过程的合理情景举例说明此类合成群落的设计原则。这些设计原则包括通过交叉喂养的种间代谢相互作用、通过代谢物和自诱导信号分子的种间信号传导过程进行调节,以及合成微生物群落的空间结构。特别是,将概述代谢相互依赖性、正反馈调节以及诱导性细胞聚集和生物膜形成的实现。合成微生物群落构成了代谢工程单一菌株生物技术应用的可行扩展,并扩大了微生物生产过程的范围。