Gralka Matti, Szabo Rachel, Stocker Roman, Cordero Otto X
Department of Civil and Environmental Engineering, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.
Microbiology Graduate Program, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.
Curr Biol. 2020 Oct 5;30(19):R1176-R1188. doi: 10.1016/j.cub.2020.08.007.
Despite numerous surveys of gene and species content in heterotrophic microbial communities, such as those found in animal guts, oceans, or soils, it is still unclear whether there are generalizable biological or ecological processes that control their dynamics and function. Here, we review experimental and theoretical advances to argue that networks of trophic interactions, in which the metabolic excretions of one species are the primary resource for another, constitute the central drivers of microbial community assembly. Trophic interactions emerge from the deconstruction of complex forms of organic matter into a wealth of smaller metabolic intermediates, some of which are released to the environment and serve as a nutritional buffet for the community. The structure of the emergent trophic network and the rate at which primary resources are supplied control many features of microbial community assembly, including the relative contributions of competition and cooperation and the emergence of alternative community states. Viewing microbial community assembly through the lens of trophic interactions also has important implications for the spatial dynamics of communities as well as the functional redundancy of taxonomic groups. Given the ubiquity of trophic interactions across environments, they impart a common logic that can enable the development of a more quantitative and predictive microbial community ecology.
尽管已经对异养微生物群落(如动物肠道、海洋或土壤中的微生物群落)的基因和物种组成进行了大量调查,但目前仍不清楚是否存在可推广的生物学或生态过程来控制其动态和功能。在这里,我们回顾了实验和理论进展,认为营养相互作用网络(其中一个物种的代谢排泄物是另一个物种的主要资源)构成了微生物群落组装的核心驱动力。营养相互作用源于将复杂形式的有机物质分解为大量较小的代谢中间体,其中一些释放到环境中,为群落提供营养盛宴。新兴营养网络的结构和主要资源的供应速率控制着微生物群落组装的许多特征,包括竞争与合作的相对贡献以及替代群落状态的出现。通过营养相互作用的视角看待微生物群落组装,对群落的空间动态以及分类群的功能冗余也具有重要意义。鉴于营养相互作用在各种环境中普遍存在,它们赋予了一种共同的逻辑,这有助于发展更具定量性和预测性的微生物群落生态学。