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首页> 外文期刊>Journal of combinatorial optimization >Tracing 'driver' versus 'modulator' information flow throughout large-scale, task-related neural circuitry
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Tracing 'driver' versus 'modulator' information flow throughout large-scale, task-related neural circuitry

机译:跟踪与任务相关的大规模神经电路中的“驱动程序”与“调制器”信息流

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摘要

Primary objective: To determine the relative uses of neural action potential ('spike') data versus local field potentials (LFPs) for modeling information flow through complex brain networks. Hypothesis: The common use of LFP data, which are continuous and therefore more mathematically suited for spectral information-flow modeling techniques such as Granger causality analysis, can lead to spurious inferences about whether a given brain area 'drives' the spiking in a downstream area. Experiment: We recorded spikes and LFPs from the forelimb motor cortex (M1) and the magnocellular red nucleus (mRN), which receives axon collaterals from M1 projection cells onto its distal dendrites, but not onto its perisomatic regions, as rats performed a skilled reaching task. Results and implications: As predicted, Granger causality analysis on the LFPs-which are mainly composed of vector-summed dendritic currents-produced results that if conventionally interpreted would suggest that the M1 cells drove spike firing in the mRN, whereas analyses of spiking in the two recorded regions revealed no significant correlations. These results suggest that mathematical models of information flow should treat the sampled dendritic activity as more likely to reflect intrinsic dendritic and input-related processing in neural networks, whereas spikes are more likely to provide information about the output of neural network processing.
机译:主要目的:确定神经动作电位(“尖峰”)数据与局部场电位(LFP)相对用于建模复杂大脑网络信息流的相对用途。假设:LFP数据是连续的,因此在数学上更适合频谱信息流建模技术(例如Granger因果分析),这通常会导致对给定大脑区域是否“驱动”下游区域峰值的错误推断。 。实验:我们记录了来自前肢运动皮层(M1)和大细胞红核(mRN)的尖峰和LFP,这是由于大鼠进行了熟练的触及,从M1投射细胞到其远端树突而不是其周边区域接受轴突侧支任务。结果和意义:如预期的那样,对LFP的Granger因果分析(主要由矢量求和的树突状电流组成)所产生的结果表明,如果按照常规方式解释,则表明M1细胞在mRN中驱动了尖峰发射,而在MRN中的尖峰分析两个记录区域显示无显着相关性。这些结果表明,信息流的数学模型应将采样的树突活动视为更可能反映神经网络中固有的树突和与输入相关的处理,而尖峰更有可能提供有关神经网络处理输出的信息。

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