Pontrelli Sammy, Szabo Rachel, Pollak Shaul, Schwartzman Julia, Ledezma-Tejeida Daniela, Cordero Otto X, Sauer Uwe
Institute of Molecular Systems Biology, ETH Zürich, Zurich 8093, Switzerland.
Department of Civil and Environmental Engineering, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.
Sci Adv. 2022 Feb 25;8(8):eabk3076. doi: 10.1126/sciadv.abk3076. Epub 2022 Feb 23.
Metabolic processes that fuel the growth of heterotrophic microbial communities are initiated by specialized biopolymer degraders that decompose complex forms of organic matter. It is unclear, however, to what extent degraders structure the downstream assembly of the community that follows polymer breakdown. Investigating a model marine microbial community that degrades chitin, we show that chitinases secreted by different degraders produce oligomers of specific chain lengths that not only select for specialized consumers but also influence the metabolites secreted by these consumers into a shared resource pool. Each species participating in the breakdown cascade exhibits unique hierarchical preferences for substrates, which underlies the sequential colonization of metabolically distinct groups as resource availability changes over time. By identifying the metabolic underpinnings of microbial community assembly, we reveal a hierarchical cross-feeding structure that allows biopolymer degraders to shape the dynamics of community assembly.
为异养微生物群落生长提供能量的代谢过程由专门的生物聚合物降解菌启动,这些降解菌分解复杂形式的有机物。然而,目前尚不清楚降解菌在多大程度上构建了聚合物分解后群落的下游组装。通过研究一个降解几丁质的海洋微生物群落模型,我们发现不同降解菌分泌的几丁质酶产生特定链长的寡聚物,这些寡聚物不仅选择特定的消费者,还影响这些消费者分泌到共享资源池中的代谢物。参与分解级联反应的每个物种对底物都表现出独特的分层偏好,这是随着资源可用性随时间变化,代谢不同的群体依次定殖的基础。通过确定微生物群落组装的代谢基础,我们揭示了一种分层的交叉喂养结构,这种结构使生物聚合物降解菌能够塑造群落组装的动态过程。