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Design of a translation resource allocation controller to manage cellular resource limitations

机译:管理蜂窝资源限制的翻译资源分配控制器的设计

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Microorganisms are widely used in synthetic biology for applications which require the simultaneous expression of multiple genes. However, gene expression in these microbes is limited by the number of free ribosomes. This resource limitation can result in the emergence of hidden regulatory interactions between co-expressed genes, such as gene coupling, where for example the expression of one gene decreases as another increases. In synthetic biology, where circuits utilising multiple new genes may be introduced into microbes, such hidden interactions can have serious consequences, since resource competition can introduce coupling which in turn causes circuit performance degradation or even failure. Here, we propose a novel approach that allows the decoupling of genes in the presence of resource limitations by dynamically controlling the allocation of translational resources between the host and circuit genes. We develop a complete mechanistic model that captures the key resource limitations in the system, and show how this model may be approximated by a reduced model that can be used for the purposes of controller design. An optimal resource allocation controller which decouples circuit genes is designed and used to guide the design of an experimentally feasible controller. Simulation results verify the ability of the controller to effectively remove the regulatory interactions imposed by translational resource limitations.
机译:微生物在合成生物学中广泛用于需要同时表达多个基因的应用。但是,这些微生物中的基因表达受到游离核糖体数量的限制。这种资源限制可能导致共同表达的基因之间出现隐藏的调节相互作用,例如基因偶联,例如,一个基因的表达随着另一个基因的增加而减少。在合成生物学中,利用多个新基因的电路可能会被引入微生物中,这种隐藏的相互作用会产生严重后果,因为资源竞争会引入耦合,进而导致电路性能下降甚至失效。在这里,我们提出了一种新颖的方法,该方法允许通过动态控制宿主基因和电路基因之间翻译资源的分配,在资源有限的情况下使基因解耦。我们开发了一个完整的机械模型,该模型捕获了系统中的关键资源限制,并说明了如何通过可用于控制器设计目的的简化模型来近似该模型。设计了一种将电路基因解耦的最优资源分配控制器,并将其用于指导实验上可行的控制器的设计。仿真结果验证了控制器有效消除翻译资源限制所施加的监管相互作用的能力。

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