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首页> 外文期刊>IEEE/ACM transactions on computational biology and bioinformatics >Feed-Forward and Feedback Control in Astrocytes for Ca2+2+-Based Molecular Communications Nanonetworks
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Feed-Forward and Feedback Control in Astrocytes for Ca2+2+-Based Molecular Communications Nanonetworks

机译:用于CA2 + 2 +基于分子通信纳米机构的星形胶质细胞中的前馈和反馈控制

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Synaptic plasticity depends on the gliotransmitters' concentration in the synaptic channel. And, an abnormal concentration of gliotransmitters is linked to neurodegenerative diseases, including Alzheimer's, Parkinson's, and epilepsy. In this paper, a theoretical investigation of the cause of the abnormal concentration of gliotransmitters and how to achieve its control is presented through a Ca2+-signalling-based molecular communications framework. A feed-forward and feedback control technique is used to manipulate IP3 values to stabilize the concentration of Ca2+ inside the astrocytes. The theoretical analysis of the given model aims i) to stabilize the Ca2+ concentration around a particular desired level in order to prevent abnormal gliotransmitters' concentration (extremely high or low concentration can result in neurodegeneration), ii) to improve the molecular communication performance that utilizes Ca2+ signalling, and maintain gliotransmitters' regulation remotely. It shows that the refractory periods from Ca2+ can be maintained to lower the noise propagation resulting in smaller time-slots for bit transmission, which can also improve the delay and gain performances. The proposed approach can potentially lead to novel nanomedicine solutions for the treatment of neurodegenerative diseases, where a combination of nanotechnology and gene therapy approaches can be used to elicit the regulated Ca2+ signalling in astrocytes, ultimately improving neuronal activity.
机译:突触塑性取决于突触通道中的硫二烷蛋白浓度。而且,嗜冷血杀蛋白的异常浓度与神经变性疾病相关,包括阿尔茨海默氏症,帕金森和癫痫。在本文中,通过基于CA2 + -Signalling的分子通信框架提出了对嗜磷酸血管转运器异常浓度以及如何实现其控制的理论研究。前馈和反馈控制技术用于操纵IP3值以稳定星形胶质细胞内的Ca2 +的浓度。给定的模型的理论分析旨在稳定特定所需水平周围的Ca2 +浓度,以防止异常的嗜冷血基甲杀菌剂的浓度(极高或低浓度可导致神经变性,ii),以提高利用的分子通信性能CA2 +信号传导,远程维护硫酸甲烷的调节。它表明,可以保持来自CA2 +的耐火周期以降低噪声传播,从而降低用于比特传输的较小时隙,这也可以提高延迟和增益性能。该方法可能导致新型纳米胺类溶液用于治疗神经变性疾病,其中纳米技术和基因治疗方法的组合可用于引发星形胶质细胞中受调节的Ca2 +信号传导,最终改善神经元活动。

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