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Cytomorphic Electronics With Memristors for Modeling Fundamental Genetic Circuits

机译:具有模型的细胞素电子,用于建模基础遗传电路

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Cytomorphic engineering attempts to study the cellular behavior of biological systems using electronics. As such, it can be considered analogous to the study of neurobiological concepts for neuromorphic engineering applications. To date, digital and analog translinear electronics have commonly been used in the design of cytomorphic circuits; Such circuits could greatly benefit from lowering the area of the digital memory via memristive circuits. In this article, we propose a novel approach that utilizes the Boltzmann-exponential stochastic transport of ionic species through insulators to naturally model the nonlinear and stochastic behavior of biochemical reactions. We first show that two-terminal memristive devices can capture the non-linear and stochastic behavior of biochemical reactions. Then, we present the design of several building blocks based on analog memristive circuits that inherently model the biophysical mechanisms of gene expression. The circuits model induction by small molecules, activation and repression by transcription factors, biological promoters, cooperative binding, and transcriptional and translational regulation of gene expression. Finally, we utilize the building blocks to form complex mixed-signal networks that can simulate the delay-induced oscillator and the p53-mdm2 interaction in the cancer signaling pathway. Our approach can provide a fast and simple emulative framework for studying genetic circuits and arbitrary large-scale biological networks in systems and synthetic biology. Some challenges may be that memristive devices with frequent learning and programming do not have the same longevity as traditional transistor-based electron-transport devices, and operate with significantly slower time constants, which can limit emulation speed.
机译:Cytomorphic工程试图研究使用电子器件的生物系统细胞行为。因此,它可以被认为是对神经族工程应用的神经生物学概念的研究。迄今为止,数字和模拟转印电子常用于细胞素电路的设计。这种电路可以通过存储器电路降低数字存储器的区域。在本文中,我们提出了一种新的方法,它通过绝缘体利用离子物种的玻色子指数随机传输,自然地模拟生化反应的非线性和随机行为。我们首先表明双端子椎间盘装置可以捕获生化反应的非线性和随机行为。然后,我们介绍了基于模拟膜电路的多个构建块的设计,该电路本身模拟了基因表达的生物物理机制。小分子的电路模型诱导,转录因子,生物促进剂,协同结合和基因表达转录和翻译和平移调节的激活和抑制。最后,我们利用构建块来形成复杂的混合信号网络,该网络可以模拟延迟诱导的振荡器和癌症信号通路中的P53-MDM2相互作用。我们的方法可以为在系统和合成生物学中学习遗传电路和任意大规模生物网络的快速和简单的仿真框架。一些挑战可能是具有频繁学习和编程的忆阻器件与传统的基于晶体管的电子传输装置没有相同的寿命,并且使用显着较慢的时间常数操作,这可以限制仿真速度。

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