School of Biological and Health Systems Engineering, Arizona State University, Tempe, Arizona85281, United States.
Cain Department of Chemical Engineering, Louisiana State University, Baton Rouge, Louisiana70803, United States.
ACS Synth Biol. 2022 Dec 16;11(12):3986-3995. doi: 10.1021/acssynbio.2c00318. Epub 2022 Nov 10.
The effects of host resource limitations on the function of synthetic gene circuits have gained significant attention over the past years. Hosts, having evolved resource capacities optimal for their own genome, have been repeatedly demonstrated to suffer from the added burden of synthetic genetic programs, which may in return pose deleterious effects on the circuit's function. Three resource controller archetypes have been proposed previously to mitigate resource distribution problems in dynamic circuits: the local controller, the global controller, and a "negatively competitive" regulatory (NCR) controller that utilizes synthetic competition to combat resource competition. The dynamics of negative feedback forms of these controllers have been previously investigated, and here we extend the analysis of these resource allocation strategies to the incoherent feedforward loop (iFFL) topology. We demonstrate that the three iFFL controllers can attenuate Winner-Take-All resource competition between two bistable switches. We uncover that the parameters associated with the synthetic competition in the NCR iFFL controller are paramount to its increased efficacy over the local controller type, while the global controllers demonstrate to be relatively ineffectual. Interestingly, unlike the negative feedback counterpart topologies, iFFL controllers exhibit a unique coupling of switch activation thresholds which we term the "coactivation threshold shift" effect. Finally, we demonstrate that a nearly fully orthogonal set of bistable switches could be achieved by pairing an NCR controller with an appropriate level of controller resource consumption.
在过去的几年中,宿主资源限制对合成基因回路功能的影响引起了人们的广泛关注。宿主已经进化出了最适合自身基因组的资源容量,它们已经反复被证明会因为额外的合成遗传程序而受到负担,而这反过来又可能对电路的功能产生有害影响。以前已经提出了三种资源控制器原型来减轻动态电路中的资源分配问题:局部控制器、全局控制器和利用合成竞争来对抗资源竞争的“负竞争”调节(NCR)控制器。这些控制器的负反馈形式的动力学以前已经进行了研究,在这里我们将这些资源分配策略的分析扩展到非相干前馈环(iFFL)拓扑结构。我们证明,三种 iFFL 控制器可以减轻两个双稳态开关之间的胜者通吃资源竞争。我们发现,与局部控制器类型相比,NCR iFFL 控制器中与合成竞争相关的参数对于其增加的功效至关重要,而全局控制器则相对无效。有趣的是,与负反馈对应拓扑不同,iFFL 控制器表现出独特的开关激活阈值耦合,我们称之为“共激活阈值偏移”效应。最后,我们证明通过将 NCR 控制器与适当水平的控制器资源消耗相配对,可以实现几乎完全正交的双稳态开关集。