School of Chemistry, University of Hyderabad, Central University P.O., Hyderabad 500046, Telangana, India.
ACS Synth Biol. 2021 Feb 19;10(2):391-401. doi: 10.1021/acssynbio.0c00570. Epub 2021 Feb 3.
Bistable switches that produce all-or-none responses have been found to regulate a number of natural cellular decision making processes, and subsequently synthetic switches were designed to exploit their potential. However, an increasing number of studies, particularly in the context of cellular differentiation, highlight the existence of a mixed state that can be explained by tristable switches. The criterion for designing robust tristable switches still remains to be understood from the perspective of network topology. To address such a question, we calculated the robustness of several 2- and 3-component network motifs, connected only two positive feedback loops, in generating tristable signal response curves. By calculating the effective potential landscape and following its modifications with the bifurcation parameter, we constructed one-parameter bifurcation diagrams of these models in a high-throughput manner for a large combinations of parameters. We report here that introduction of a self-activatory positive feedback loop, directly or indirectly, into a mutual inhibition loop leads to generating the most robust tristable response. The high-throughput approach of our method further allowed us to determine the robustness of four types of tristable responses that originate from the relative locations of four bifurcation points. Using the method, we also analyzed the role of additional mutual inhibition loops in stabilizing the mixed state.
双稳态开关产生全有或全无的响应,已被发现调节许多自然的细胞决策过程,随后合成开关被设计来利用它们的潜力。然而,越来越多的研究,特别是在细胞分化的背景下,强调了存在一种可以用三稳态开关来解释的混合状态。从网络拓扑的角度来看,设计稳健的三稳态开关的标准仍然需要理解。为了解决这样的问题,我们计算了几种 2 元和 3 元网络基元的稳健性,这些基元只连接两个正反馈回路,以产生三稳态信号响应曲线。通过计算有效势能景观,并随着分岔参数的变化来跟踪其变化,我们以高通量的方式为参数的大组合构建了这些模型的单参数分岔图。我们在这里报告,直接或间接地将自激活正反馈回路引入相互抑制回路会导致产生最稳健的三稳态响应。我们的方法的高通量方法还允许我们确定源自四个分岔点相对位置的四种三稳态响应的稳健性。使用该方法,我们还分析了额外的相互抑制回路在稳定混合状态中的作用。