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从回路到细胞的运动障碍深部脑刺激的群体模型

A Population Model of Deep Brain Stimulation in Movement Disorders From Circuits to Cells.

作者信息

Yousif Nada, Bain Peter G, Nandi Dipankar, Borisyuk Roman

机构信息

School of Engineering and Computer Science, University of Hertfordshire, Hatfield, United Kingdom.

Division of Brain Sciences, Imperial College Healthcare NHS Trust, Faculty of Medicine, Imperial College London, London, United Kingdom.

出版信息

Front Hum Neurosci. 2020 Mar 5;14:55. doi: 10.3389/fnhum.2020.00055. eCollection 2020.

Abstract

For more than 30 years, deep brain stimulation (DBS) has been used to target the symptoms of a number of neurological disorders and in particular movement disorders such as Parkinson's disease (PD) and essential tremor (ET). It is known that the loss of dopaminergic neurons in the substantia nigra leads to PD, while the exact impact of this on the brain dynamics is not fully understood, the presence of beta-band oscillatory activity is thought to be pathological. The cause of ET, however, remains uncertain, however pathological oscillations in the thalamocortical-cerebellar network have been linked to tremor. Both of these movement disorders are treated with DBS, which entails the surgical implantation of electrodes into a patient's brain. While DBS leads to an improvement in symptoms for many patients, the mechanisms underlying this improvement is not clearly understood, and computational modeling has been used extensively to improve this. Many of the models used to study DBS and its effect on the human brain have mainly utilized single neuron and single axon biophysical models. We have previously shown in separate models however, that the use of population models can shed much light on the mechanisms of the underlying pathological neural activity in PD and ET in turn, and on the mechanisms underlying DBS. Together, this work suggested that the dynamics of the cerebellar-basal ganglia thalamocortical network support oscillations at frequency range relevant to movement disorders. Here, we propose a new combined model of this network and present new results that demonstrate that both Parkinsonian oscillations in the beta band and oscillations in the tremor frequency range arise from the dynamics of such a network. We find regions in the parameter space demonstrating the different dynamics and go on to examine the transition from one oscillatory regime to another as well as the impact of DBS on these different types of pathological activity. This work will allow us to better understand the changes in brain activity induced by DBS, and allow us to optimize this clinical therapy, particularly in terms of target selection and parameter setting.

摘要

30多年来,深部脑刺激(DBS)一直被用于治疗多种神经系统疾病的症状,尤其是帕金森病(PD)和特发性震颤(ET)等运动障碍。已知黑质中多巴胺能神经元的丧失会导致帕金森病,虽然其对脑动力学的确切影响尚未完全了解,但β波段振荡活动的存在被认为是病理性的。然而,特发性震颤的病因仍不确定,不过丘脑皮质 - 小脑网络中的病理性振荡已被认为与震颤有关。这两种运动障碍都采用DBS治疗,即通过手术将电极植入患者大脑。虽然DBS使许多患者的症状得到改善,但其改善机制尚不清楚,计算建模已被广泛用于对此进行改进。许多用于研究DBS及其对人脑影响的模型主要采用单神经元和单轴突生物物理模型。然而,我们之前在不同模型中表明,群体模型的使用能够反过来深入了解帕金森病和特发性震颤潜在病理神经活动的机制,以及DBS的潜在机制。综合来看,这项工作表明小脑 - 基底神经节 - 丘脑皮质网络的动力学支持与运动障碍相关频率范围内的振荡。在此,我们提出该网络的一种新的组合模型,并展示新的结果,证明β波段的帕金森振荡和震颤频率范围内的振荡均源于这样一个网络的动力学。我们在参数空间中找到展示不同动力学的区域,并继续研究从一种振荡状态到另一种振荡状态的转变以及DBS对这些不同类型病理活动的影响。这项工作将使我们能够更好地理解DBS引起的脑活动变化,并使我们能够优化这种临床治疗方法,特别是在靶点选择和参数设置方面。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fa42/7066497/87ef5a3dab12/fnhum-14-00055-g0001.jpg

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