School of Chemical and Biomolecular Engineering, Georgia Institute of Technology, Atlanta, Georgia 30332, USA; email:
School of Electrical and Computer Engineering, Georgia Institute of Technology, Atlanta, Georgia 30332, USA.
Annu Rev Biophys. 2021 May 6;50:303-321. doi: 10.1146/annurev-biophys-090820-101708. Epub 2021 Feb 19.
Allosteric function is a critical component of many of the parts used to construct gene networks throughout synthetic biology. In this review, we discuss an emerging field of research and education, biomolecular systems engineering, that expands on the synthetic biology edifice-integrating workflows and strategies from protein engineering, chemical engineering, electrical engineering, and computer science principles. We focus on the role of engineered allosteric communication as it relates to transcriptional gene regulators-i.e., transcription factors and corresponding unit operations. In this review, we () explore allosteric communication in the lactose repressor LacI topology, () demonstrate how to leverage this understanding of allostery in the LacI system to engineer non-natural BUFFER and NOT logical operations, () illustrate how engineering workflows can be used to confer alternate allosteric functions in disparate systems that share the LacI topology, and () demonstrate how fundamental unit operations can be directed to form combinational logical operations.
变构作用是许多用于构建合成生物学中基因网络的部分的关键组成部分。在这篇综述中,我们讨论了一个新兴的研究和教育领域,即生物分子系统工程,它扩展了合成生物学的体系结构——整合了蛋白质工程、化学工程、电气工程和计算机科学原理的工作流程和策略。我们专注于工程变构通信的作用,因为它与转录基因调节剂(即转录因子和相应的单元操作)有关。在这篇综述中,我们()探讨了乳糖阻遏物 LacI 拓扑结构中的变构通信,()展示了如何利用 LacI 系统中对变构的这种理解来设计非天然 BUFFER 和 NOT 逻辑运算,()说明了工程工作流程如何用于赋予具有 LacI 拓扑结构的不同系统替代变构功能,以及()展示了如何指导基本单元操作形成组合逻辑运算。