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首页> 外文期刊>Statistics in medicine >A point-process response model for spike trains from single neurons in neural circuits under optogenetic stimulation
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A point-process response model for spike trains from single neurons in neural circuits under optogenetic stimulation

机译:遗传刺激下神经回路中单个神经元的突波序列的点过程响应模型

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摘要

Optogenetics is a new tool to study neuronal circuits that have been genetically modified to allow stimulation by flashes of light. We study recordings from single neurons within neural circuits under optogenetic stimulation. The data from these experiments present a statistical challenge of modeling a high-frequency point process (neuronal spikes) while the input is another high-frequency point process (light flashes). We further develop a generalized linear model approach to model the relationships between two point processes, employing additive point-process response functions. The resulting model, point-process responses for optogenetics (PRO), provides explicit nonlinear transformations to link the input point process with the output one. Such response functions may provide important and interpretable scientific insights into the properties of the biophysical process that governs neural spiking in response to optogenetic stimulation. We validate and compare the PRO model using a real dataset and simulations, and our model yields a superior area-under-the-curve value as high as 93% for predicting every future spike. For our experiment on the recurrent layer V circuit in the prefrontal cortex, the PRO model provides evidence that neurons integrate their inputs in a sophisticated manner. Another use of the model is that it enables understanding how neural circuits are altered under various disease conditions and/or experimental conditions by comparing the PRO parameters. Copyright (c) 2015 John Wiley & Sons, Ltd.
机译:光遗传学是研究经过基因修饰以允许闪光灯刺激的神经元回路的新工具。我们研究在光遗传学刺激下神经回路内单个神经元的记录。来自这些实验的数据提出了对高频点过程(神经元尖峰)建模的统计挑战,而输入是另一个高频点过程(指示灯闪烁)。我们进一步开发了通用线性模型方法,以利用加性点过程响应函数对两点过程之间的关系进行建模。最终的模型,光遗传学的点过程响应(PRO),提供了显式的非线性转换,以将输入点过程与输出点过程联系起来。这样的响应功能可以提供重要的和可解释的科学见解,以控制响应光遗传学刺激的神经突触的生物物理过程的特性。我们使用真实的数据集和仿真来验证和比较PRO模型,并且该模型可产生高达93%的出色曲线下面积值,可预测每个未来的峰值。对于我们在前额叶皮层中的递归V层电路的实验,PRO模型提供了神经元以复杂方式整合其输入的证据。该模型的另一个用途是,它可以通过比较PRO参数来了解在各种疾病条件和/或实验条件下神经回路如何变化。版权所有(c)2015 John Wiley&Sons,Ltd.

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