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首页> 外文期刊>IEEE transactions on biomedical circuits and systems >An Artificial Tissue Homeostasis Circuit Designed via Analog Circuit Techniques
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An Artificial Tissue Homeostasis Circuit Designed via Analog Circuit Techniques

机译:通过模拟电路技术设计的人工组织稳态电路

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Tissue homeostasis (feedback control) is an important mechanism that regulates the population of different cell types within a tissue. In type-1 diabetes, auto-immune attack and consequent death of pancreatic beta cells result in the failure of homeostasis and loss of organ function. Synthetically engineered adult stem cells with homeostatic control based on digital logic have been proposed as a solution for regenerating beta cells. Such previously proposed homeostatic control circuits have thus far been unable to reliably control both stem-cell proliferation and stem-cell differentiation. Using analog circuits and feedback systems analysis, we have designed an in silico circuit that performs homeostatic control by utilizing a novel scheme with both symmetric and asymmetric division of stem cells. The use of a variety of feedback systems analysis techniques, which is common in analog circuit design, including root-locus techniques, Bode plots of feedback-loop frequency response, compensation techniques for improving stability, and robustness analysis help us choose design parameters to meet desirable specifications. For example, we show that lead compensation in analog circuits instantiated as an incoherent feed-forward loop in the biological circuit improves stability, whereas simultaneously reducing steady-state tracking error. Our symmetric and asymmetric division scheme also improves phase margin in the feedback loop, and thus improves robustness. This paper could be useful in porting an analog-circuit design framework to synthetic biological applications of the future.
机译:组织稳态(反馈控制)是调节组织内不同细胞类型的群体的重要机制。在1型糖尿病中,自动免疫发作和随后的胰腺β细胞死亡导致稳态失败和器官功能丧失。已经提出了基于数字逻辑的具有稳态对照的合成成人干细胞作为再生β细胞的溶液。因此,这种先前提出的稳态控制电路已经远远不能可靠地控制干细胞增殖和干细胞分化。使用模拟电路和反馈系统分析,我们设计了一种在硅电路中,通过利用具有对称和不对称的干细胞的对称和不对称分裂的新方案进行稳态控制。使用各种反馈系统分析技术,该技术常见于模拟电路设计,包括根轨迹技术,反馈回路频率响应的Bode曲线图,提高稳定性的补偿技术,鲁棒性分析有助于我们选择设计参数以满足设计参数理想的规格。例如,我们表明,在生物回路中实例化为作为一种不相干前馈回路的模拟电路的铅补偿提高了稳定性,而同时减少稳态跟踪误差。我们的对称和非对称划分方案还改善了反馈回路中的相位余量,从而提高了鲁棒性。本文可用于将模拟电路设计框架移植到未来的合成生物应用。

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