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多层自催化反馈能够在资源竞争和跨尺度过程中实现积分控制。

Multi-Layer Autocatalytic Feedback Enables Integral Control Amidst Resource Competition and Across Scales.

作者信息

M Zand Armin, Anastassov Stanislav, Frei Timothy, Khammash Mustafa

机构信息

ETH Zurich, Department of Biosystems Science and Engineering, Schanzenstrasse 44, Basel 4056, Switzerland.

出版信息

ACS Synth Biol. 2025 Apr 18;14(4):1041-1061. doi: 10.1021/acssynbio.4c00575. Epub 2025 Mar 21.

Abstract

Integral feedback control strategies have proven effective in regulating protein expression in unpredictable cellular environments. These strategies, grounded in model-based designs and control theory, have advanced synthetic biology applications. Autocatalytic integral feedback controllers, utilizing positive autoregulation for integral action, are one class of simplest architectures to design integrators. This class of controllers offers unique features, such as robustness against dilution effects and cellular growth, as well as the potential for synthetic realizations across different biological scales, owing to their similarity to self-regenerative behaviors widely observed in nature. Despite this, their potential has not yet been fully exploited. One key reason, we discuss, is that their effectiveness is often hindered by resource competition and context-dependent couplings. This study addresses these challenges using a multilayer feedback strategy. Our designs enabled population-level integral feedback and multicellular integrators, where the control function emerges as a property of coordinated interactions distributed across different cell populations coexisting in a multicellular consortium. We provide a generalized mathematical framework for modeling resource competition in complex genetic networks, supporting the design of intracellular control circuits. The use of our proposed multilayer autocatalytic controllers is examined in two typical control tasks that pose significant relevance to synthetic biology applications: concentration regulation and ratiometric control. We define a ratiometric control task and solve it using a variant of our controller. The effectiveness of our controller motifs is demonstrated through a range of application examples, from precise regulation of gene expression and gene ratios in embedded designs to population growth and coculture composition control in multicellular designs within engineered microbial ecosystems. These findings offer a versatile approach to achieving robust adaptation and homeostasis from subcellular to multicellular scales.

摘要

积分反馈控制策略已被证明在不可预测的细胞环境中调节蛋白质表达方面是有效的。这些基于模型设计和控制理论的策略推动了合成生物学的应用。自催化积分反馈控制器利用正向自动调节来实现积分作用,是设计积分器的一类最简单的架构。这类控制器具有独特的特性,例如对稀释效应和细胞生长具有鲁棒性,并且由于它们与自然界中广泛观察到的自我再生行为相似,因此具有跨越不同生物尺度进行合成实现的潜力。尽管如此,它们的潜力尚未得到充分利用。我们讨论的一个关键原因是,它们的有效性常常受到资源竞争和上下文相关耦合的阻碍。本研究使用多层反馈策略应对这些挑战。我们的设计实现了群体水平的积分反馈和多细胞积分器,其中控制功能作为分布在多细胞聚集体中共存的不同细胞群体之间协调相互作用的一种属性而出现。我们提供了一个用于对复杂遗传网络中的资源竞争进行建模的广义数学框架,以支持细胞内控制电路的设计。在与合成生物学应用密切相关的两个典型控制任务中检验了我们提出的多层自催化控制器的使用:浓度调节和比例控制。我们定义了一个比例控制任务,并使用我们的控制器变体来解决它。通过一系列应用示例证明了我们的控制器基序的有效性,从嵌入式设计中基因表达和基因比例的精确调节到工程化微生物生态系统中多细胞设计中的群体生长和共培养组成控制。这些发现提供了一种从亚细胞到多细胞尺度实现鲁棒适应和体内平衡的通用方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/90d2/12012887/55a01d83f4d2/sb4c00575_0001.jpg

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