From Negative Feedback to Integrated Control: Recombinase-Based Strategies for Mitigating Resource Competition
One of the key challenges in synthetic biology is the unintended interference between independently designed gene modules caused by resource competition within host cells. This interference disrupts circuit modularity and undermines the reliability of genetic systems. In this chapter, we discussed the developments of recombinase-based control strategies to address these challenges. We first describe a negative feedback controller, Re-NF controller, that leverages recombinase-mediated promoter flipping to automatically adjust circuit activity in response to resource usage, thereby stabilizing module performance under fluctuating cellular conditions. Building on this foundation, we introduce the Re-NF-FF controller, which integrates both negative feedback and feedforward regulation through a single recombinase-mediated promoter flipping. This dual strategy effectively balances resource allocation, reduces crosstalk, and improves predictability across diverse circuit contexts. We outline the design principles of both controllers, review their performance in controlling modular circuits, and discuss their implications for synthetic biology. Together, these strategies illustrate how recombinase-based regulation can be harnessed to enhance robustness, predictability, and modularity in the engineering of genetic systems.