Nature Communications · 2020 · 161 citations · 60 references
Designing genetic networks in mammalian cells remains slow and prone to unexplained failures despite recent advances. The study aims to identify and engineer miRNA‑based incoherent feedforward loop circuits that mitigate gene expression burden, guided by a resource‑aware mathematical model. They implemented the iFFL circuits using endogenous miRNAs as core components, creating a versatile hybrid design that mitigates burden across cell lines with minimal resource demands. They demonstrated that transiently expressed genes compete for limited transcriptional and translational resources, coupling independent exogenous and endogenous genes and causing functional divergence, and that engineered miRNA‑based iFFL circuits can mitigate this burden, establishing a foundation for context‑aware synthetic circuit design.
Abstract Despite recent advances in circuit engineering, the design of genetic networks in mammalian cells is still painstakingly slow and fraught with inexplicable failures. Here, we demonstrate that transiently expressed genes in mammalian cells compete for limited transcriptional and translational resources. This competition results in the coupling of otherwise independent exogenous and endogenous genes, creating a divergence between intended and actual function. Guided by a resource-aware mathematical model, we identify and engineer natural and synthetic miRNA-based incoherent feedforward loop (iFFL) circuits that mitigate gene expression burden. The implementation of these circuits features the use of endogenous miRNAs as elementary components of the engineered iFFL device, a versatile hybrid design that allows burden mitigation to be achieved across different cell-lines with minimal resource requirements. This study establishes the foundations for context-aware prediction and improvement of in vivo synthetic circuit performance, paving the way towards more rational synthetic construct design in mammalian cells.
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