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Neural membrane microdomains as computational systems: Toward molecular modeling in the study of neural disease

机译:神经膜微域作为计算系统:神经疾病研究中的分子建模

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Several studies indicate that the lipid biological membrane contains discrete regions known as rafts or microdomains. These structures range in size from 50 to 70 nm to nearly a μm and play important roles in cell signaling. In the neuron, computational models suggest that transiently polarized microdomain ethenes may regulate ion-channel dynamics and control impulse propagation. Thus the microdomain is nominated as the fundamental unit of nervous system signaling. Based on this model, the article proposes a first-approximation design for a supported-membrane device which would mimic microdomain properties. The basic architecture would consist of an electrically addressable biotemplated nanowire crossing an artificial membrane corralled in a vertical carbon nanofiber barrier. Advantages and disadvantages of model components are discussed at length. It is proposed that artificial devices of this type would be medically useful in simulating membrane states correlated with neural disease. This possibility is examined with reference to the A-current potassium channel, implicated in epilepsy.
机译:多项研究表明,脂质生物膜包含离散区域,称为筏或微区。这些结构的尺寸范围从50到70 nm到近一个μm,并在细胞信号传导中起重要作用。在神经元中,计算模型表明,瞬态极化的微区乙烯可以调节离子通道动力学并控制脉冲传播。因此,微域被指定为神经系统信号传导的基本单位。基于此模型,本文提出了一种将模拟微畴特性的支撑膜器件的第一近似设计。基本架构将由可电寻址的生物模板化纳米线组成,该纳米线穿过在垂直碳纳米纤维屏障中固定的人造膜。详细讨论了模型组件的优缺点。提出这种类型的人造装置在模拟与神经疾病有关的膜状态方面将在医学上有用。参考与癫痫有关的A-电流钾通道检查了这种可能性。

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