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Silicon Central Pattern Generator Model of Cardiac Contraction Behavior

机译:心脏收缩行为的硅中央模式生成器模型

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Synchronization of brain cells underlies the generation of key motor functions including breathing, cardiac activity and locomotion. The circuitry mechanisms underpinning this phase-locked rhythmic patterns have been studied in local circuitry networks known as Central Pattern Generators (CPGs). Biological CPGs (bCPGs) in healthy nervous systems demonstrate robustness and adaptation in response to variations in sensory feedback. This study aims at constructing biologically-plausible network models of analog hardware CPGs (hCPGs), and assimilating the membrane voltages of all constituting neurons in the network with large-scale constrained nonlinear optimization. The hCPG model exhibits a tetra-phasic behavior where the spike timings of the four neurons corresponds to the activation of the heart chambers: sino-atrial node, left atrium, left ventricle and right ventricle. We show the results of modelling electrocardiogram (ECG) recordings from anesthetized dogs. This research will facilitate designing bioelectronic implants to recover cardiac function in heart diseases.
机译:脑细胞的同步作用是关键运动功能(包括呼吸,心脏活动和运动)的产生的基础。已经在称为中央模式发生器(CPG)的本地电路网络中研究了支持这种锁相节奏模式的电路机制。健康的神经系统中的生物CPG(bCPG)表现出对感觉反馈变化的鲁棒性和适应性。本研究旨在构建模拟硬件CPG(hCPG)的生物学上可行的网络模型,并通过大规模约束非线性优化吸收网络中所有构成神经元的膜电压。 hCPG模型表现出四相行为,其中四个神经元的尖峰时间对应于心房的激活:窦房结,左心房,左心室和右心室。我们显示了从麻醉的狗建模心电图(ECG)录音的结果。这项研究将有助于设计生物电子植入物,以恢复心脏病中的心脏功能。

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