Chan Dennis Tin Chat, Winter Lena, Bjerg Johan, Krsmanovic Stina, Baldwin Geoff S, Bernstein Hans C
Faculty of Biosciences, Fisheries and Economics, UiT─The Arctic University of Norway, 9019 Tromsø, Norway.
Department of Life Sciences, Imperial College London, South Kensington, London SW7 2AZ, U.K.
ACS Synth Biol. 2025 Jan 17;14(1):193-205. doi: 10.1021/acssynbio.4c00551. Epub 2025 Jan 4.
The choice of organism to host a genetic circuit, the chassis, is often defaulted to model organisms due to their amenability. The chassis-design space has therefore remained underexplored as an engineering variable. In this work, we explored the design space of a genetic toggle switch through variations in nine ribosome binding site compositions and three host contexts, creating 27 circuit variants. Characterization of performance metrics in terms of toggle switch output and host growth dynamics unveils a spectrum of performance profiles from our circuit library. We find that changes in host context cause large shifts in overall performance, while modulating ribosome binding sites leads to more incremental changes. We find that a combined ribosome binding site and host context modulation approach can be used to fine-tune the properties of a toggle switch according to user-defined specifications, such as toward greater signaling strength, inducer sensitivity, or both. Other auxiliary properties, such as inducer tolerance, are also exclusively accessed through changes in the host context. We demonstrate here that exploration of the chassis-design space can offer significant value, reconceptualizing the chassis organism as an important part in the synthetic biologist's toolbox with important implications for the field of synthetic biology.
由于其易操作性,用于承载遗传回路的生物体(即底盘)的选择通常默认采用模式生物。因此,底盘设计空间作为一个工程变量仍未得到充分探索。在这项工作中,我们通过改变九个核糖体结合位点组成和三种宿主背景,探索了遗传双稳开关的设计空间,创建了27种回路变体。根据双稳开关输出和宿主生长动态对性能指标进行表征,揭示了我们的回路库中的一系列性能概况。我们发现宿主背景的变化会导致整体性能的大幅变化,而调节核糖体结合位点只会导致更渐进的变化。我们发现,结合核糖体结合位点和宿主背景调节方法可用于根据用户定义的规格微调双稳开关的特性,例如提高信号强度、诱导剂敏感性或两者兼而有之。其他辅助特性,如诱导剂耐受性,也只能通过改变宿主背景来实现。我们在此证明,对底盘设计空间的探索可以提供重大价值,将底盘生物重新概念化为合成生物学家工具箱中的一个重要部分,这对合成生物学领域具有重要意义。