用于复杂图案形成的工程多信号系统

D. Karig, Jerome Ku, Ron Weiss
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引用次数: 1

摘要

生物模式形成网络通常通过使用多种细胞间信号来协调组成细胞的复杂过程。这种多信号系统的正向工程在合成生物学中有许多重要的应用,包括生物传感、组织工程和生物材料制造。此外,这种合成系统为定量研究控制类似自然遗传网络的基本原理提供了一个试验场。然而,工程多信号网络的初始要求是信号系统的各种特性的表征和调谐,包括串扰、接收器响应强度和灵敏度。我们描述了由铜绿假单胞菌的Las和Rhl群体感应系统组成的合成接收器的串扰相互作用。接下来,我们介绍了基因构建的结果,旨在放大对信号分子的弱转录反应。然后,我们讨论从受体蛋白定向进化的结果,以优化接收器的敏感性。这些工程合成结构的方法具有期望的响应强度和对外部信号的灵敏度,它们本身就有许多重要的应用,例如用于检测微量毒素的生物传感器的开发。除了实验结果显示如何为此类应用优化信号结构之外,我们还提供了两个示例模式形成系统的模拟,这些示例模式形成系统可以由这些调谐组件构建。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Engineering multi-signal systems for complex pattern formation
Biological pattern formation networks orchestrate complex processes of constituent cells, often through the use of multiple intercellular signals. The forward engineering of such multi-signal systems in synthetic biology has a number of important applications including biosensing, tissue engineering, and biomaterial fabrication. In addition, such synthetic systems provide a testing ground for quantitatively studying the fundamental principles governing similar natural genetic networks. However, an initial requirement for engineering multi-signal networks is the characterization and tuning of various properties of the signaling systems, including crosstalk, receiver response strength, and sensitivity. We characterize crosstalk interactions for synthetic receivers built from components of the Las and Rhl quorum sensing systems from Pseudomonas aeruginosa. Next, we present results from genetic constructs designed to amplify weak transcriptional responses to signaling molecules. We then discuss results from directed evolution of receptor proteins to optimize receiver sensitivity. These methods of engineering synthetic constructs with desired response strengths and sensitivities to external signals have a number of important applications in their own right, such as the development of biosensors for detection of trace amounts of toxins. In addition to the experimental results that show how signaling constructs can be optimized for such applications, we present simulations for two example pattern formation systems that can be constructed from these tuned components.
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