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模块化设计与灵活拓扑结构可调微生物群落的构建。

Modularized Design and Construction of Tunable Microbial Consortia with Flexible Topologies.

机构信息

School of Biological and Health Systems Engineering, Arizona State University, Tempe, Arizona 85287, United States.

Department of Mathematics, University of California Irvine, Irvine, California 92697, United States.

出版信息

ACS Synth Biol. 2024 Jan 19;13(1):183-194. doi: 10.1021/acssynbio.3c00420. Epub 2024 Jan 2.

Abstract

Complex and fluid bacterial community compositions are critical to diversity, stability, and function. However, quantitative and mechanistic descriptions of the dynamics of such compositions are still lacking. Here, we develop a modularized design framework that allows for bottom-up construction and the study of synthetic bacterial consortia with different topologies. We showcase the microbial consortia design and building process by constructing amensalism and competition consortia using only genetic circuit modules to engineer different strains to form the community. Functions of modules and hosting strains are validated and quantified to calibrate dynamic parameters, which are then directly fed into a full mechanistic model to accurately predict consortia composition dynamics for both amensalism and competition without further fitting. More importantly, such quantitative understanding successfully identifies the experimental conditions to achieve coexistence composition dynamics. These results illustrate the process of both computationally and experimentally building up bacteria consortia complexity and hence achieve robust control of such fluid systems.

摘要

复杂和流动的细菌群落组成对于多样性、稳定性和功能至关重要。然而,对于这些组成的动态的定量和机制描述仍然缺乏。在这里,我们开发了一个模块化设计框架,允许自下而上的构建和具有不同拓扑结构的合成细菌群落的研究。我们通过仅使用遗传电路模块来构建互利共生和竞争群落,从而展示了微生物群落的设计和构建过程,以工程化不同的菌株来形成群落。模块和宿主菌株的功能得到验证和量化,以校准动态参数,然后直接将这些参数输入到一个完整的机制模型中,以准确预测互利共生和竞争的群落组成动态,而无需进一步拟合。更重要的是,这种定量理解成功地确定了实现共存组成动态的实验条件。这些结果说明了在计算和实验上构建细菌群落复杂性的过程,从而实现对这些流动系统的稳健控制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c4a8/10805104/dad442d890be/sb3c00420_0001.jpg

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