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Using point process models to describe rhythmic spiking in the subthalamic nucleus of Parkinson's patients

机译:使用点过程模型描述帕金森病患者丘脑下核的节律性搏动

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Neurological disease is often associated with changes in firing activity in specific brain areas. Accurate statistical models of neural spiking can provide insight into the mechanisms by which the disease develops and clinical symptoms manifest. Point process theory provides a powerful framework for constructing, fitting, and evaluating the quality of neural spiking models. We illustrate an application of point process modeling to the problem of characterizing abnormal oscillatory firing patterns of neurons in the subthalamic nucleus (STN) of patients with Parkinson's disease (PD). We characterize the firing properties of these neurons by constructing conditional intensity models using spline basis functions that relate the spiking of each neuron to movement variables and the neuron's past firing history, both at short and long time scales. By calculating maximum likelihood estimators for all of the parameters and their significance levels, we are able to describe the relative propensity of aberrant STN spiking in terms of factors associated with voluntary movements, with intrinsic properties of the neurons, and factors that may be related to dysregulated network dynamics.
机译:神经系统疾病通常与特定大脑区域的放电活动变化有关。精确的神经突增统计模型可以提供对疾病发展和临床症状表现的机制的深入了解。点过程理论为构建,拟合和评估神经突刺模型的质量提供了强大的框架。我们说明了点过程建模在表征帕金森病(PD)患者的丘脑下核(STN)中神经元异常振荡放电模式的问题中的应用。我们通过使用样条基函数构造条件强度模型来表征这些神经元的放电特性,该函数将每个神经元的峰值与运动变量和神经元的过去放电历史(短时和长时尺度)相关联。通过计算所有参数的最大似然估计值及其显着性水平,我们能够根据与自发性运动相关的因素,神经元的内在特性以及可能与网络动态失调。

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