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合成细菌-酵母生态系统的随机模拟。

Stochastic simulations of a synthetic bacteria-yeast ecosystem.

作者信息

Biliouris Konstantinos, Babson David, Schmidt-Dannert Claudia, Kaznessis Yiannis N

机构信息

Department of Chemical Engineering and Materials Science, University of Minnesota, Minneapolis, MN 55455, USA.

出版信息

BMC Syst Biol. 2012 Jun 6;6:58. doi: 10.1186/1752-0509-6-58.

Abstract

BACKGROUND

The field of synthetic biology has greatly evolved and numerous functions can now be implemented by artificially engineered cells carrying the appropriate genetic information. However, in order for the cells to robustly perform complex or multiple tasks, co-operation between them may be necessary. Therefore, various synthetic biological systems whose functionality requires cell-cell communication are being designed. These systems, microbial consortia, are composed of engineered cells and exhibit a wide range of behaviors. These include yeast cells whose growth is dependent on one another, or bacteria that kill or rescue each other, synchronize, behave as predator-prey ecosystems or invade cancer cells.

RESULTS

In this paper, we study a synthetic ecosystem comprising of bacteria and yeast that communicate with and benefit from each other using small diffusible molecules. We explore the behavior of this heterogeneous microbial consortium, composed of Saccharomyces cerevisiae and Escherichia coli cells, using stochastic modeling. The stochastic model captures the relevant intra-cellular and inter-cellular interactions taking place in and between the eukaryotic and prokaryotic cells. Integration of well-characterized molecular regulatory elements into these two microbes allows for communication through quorum sensing. A gene controlling growth in yeast is induced by bacteria via chemical signals and vice versa. Interesting dynamics that are common in natural ecosystems, such as obligatory and facultative mutualism, extinction, commensalism and predator-prey like dynamics are observed. We investigate and report on the conditions under which the two species can successfully communicate and rescue each other.

CONCLUSIONS

This study explores the various behaviors exhibited by the cohabitation of engineered yeast and bacterial cells. The way that the model is built allows for studying the dynamics of any system consisting of two species communicating with one another via chemical signals. Therefore, key information acquired by our model may potentially drive the experimental design of various synthetic heterogeneous ecosystems.

摘要

背景

合成生物学领域已取得巨大发展,如今通过携带适当遗传信息的人工工程细胞可实现众多功能。然而,为使细胞稳健地执行复杂或多项任务,它们之间可能需要合作。因此,正在设计各种功能依赖细胞间通讯的合成生物系统。这些系统,即微生物群落,由工程细胞组成,并展现出广泛的行为。这些行为包括相互依赖生长的酵母细胞,或相互杀伤或拯救、同步化、表现为捕食者 - 猎物生态系统或侵袭癌细胞的细菌。

结果

在本文中,我们研究了一个由细菌和酵母组成的合成生态系统,它们利用可扩散的小分子相互通讯并从中受益。我们使用随机建模探索了这个由酿酒酵母和大肠杆菌细胞组成的异质微生物群落的行为。该随机模型捕捉了真核细胞和原核细胞内及细胞间发生的相关相互作用。将特征明确的分子调控元件整合到这两种微生物中,使得通过群体感应进行通讯成为可能。酵母中控制生长的基因由细菌通过化学信号诱导,反之亦然。观察到了自然生态系统中常见的有趣动态,如 obligatory 和兼性互利共生、灭绝、共生以及类似捕食者 - 猎物的动态。我们研究并报告了这两个物种能够成功通讯并相互拯救的条件。

结论

本研究探索了工程酵母和细菌细胞共存所展现的各种行为。模型构建方式使得能够研究任何由通过化学信号相互通讯的两个物种组成的系统的动态。因此,我们模型获取的关键信息可能会推动各种合成异质生态系统的实验设计。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/78fa/3485176/ff03f5e7d03d/1752-0509-6-58-1.jpg

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