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Neuromodulation: Selected approaches and challenges

机译:神经调节:选择的方法和挑战

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摘要

The brain operates through complex interactions in the flow of information and signal processing within neural networks. The 'wiring' of such networks, being neuronal or glial, can physically and/or functionally go rogue in various pathological states. Neuromodulation, as a multidisciplinary venture, attempts to correct such faulty nets. In this review, selected approaches and challenges in neuromodulation are discussed. The use of water-dispersible carbon nanotubes has been proven effective in the modulation of neurite outgrowth in culture and in aiding regeneration after spinal cord injury in vivo. Studying neural circuits using computational biology and analytical engineering approaches brings to light geometrical mapping of dynamics within neural networks, much needed information for stimulation interventions in medical practice. Indeed, sophisticated desynchronization approaches used for brain stimulation have been successful in coaxing 'misfiring' neuronal circuits to resume productive firing patterns in various human disorders. Devices have been developed for the real-time measurement of various neurotransmitters as well as electrical activity in the human brain during electrical deep brain stimulation. Such devices can establish the dynamics of electrochemical changes in the brain during stimulation. With increasing application of nanomaterials in devices for electrical and chemical recording and stimulating in the brain, the era of cellular, and even intracellular, precision neuromodulation will soon be upon us.
机译:大脑通过神经网络中信息流和信号处理中的复杂交互作用进行操作。这种神经网络或神经胶质网络的“布线”可能在各种病理状态下在物理和/或功能上变得无赖。神经调节作为一种多学科的尝试,试图纠正这种有问题的网络。在这篇综述中,讨论了神经调节中选择的方法和挑战。已证明使用水分散性碳纳米管可有效调节培养物中神经突的生长,并有助于体内脊髓损伤后的再生。使用计算生物学和分析工程方法研究神经回路可以揭示神经网络内动力学的几何映射,这是医学实践中刺激干预所急需的信息。确实,用于脑刺激的复杂的去同步方法已经成功地哄骗了“错开”的神经元回路,以恢复各种人类疾病中的生产性放电模式。已经开发出用于在电深脑刺激期间实时测量各种神经递质以及人脑中电活动的设备。这样的设备可以在刺激过程中建立大脑中电化学变化的动力学。随着纳米材料在大脑中用于电记录和化学刺激的设备中的越来越多的应用,细胞乃至细胞内时代的到来,精确的神经调节将很快到来。

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