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Speed hysteresis and noise shaping of traveling fronts in neural fields: role of local circuitry and nonlocal connectivity

机译:神经场中行进线的速度磁滞和噪声整形:局部电路和非局部连通性的作用

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摘要

Neural field models are powerful tools to investigate the richness of spatiotemporal activity patterns like waves and bumps, emerging from the cerebral cortex. Understanding how spontaneous and evoked activity is related to the structure of underlying networks is of central interest to unfold how information is processed by these systems. Here we focus on the interplay between local properties like input-output gain function and recurrent synaptic self-excitation of cortical modules, and nonlocal intermodular synaptic couplings yielding to define a multiscale neural field. In this framework, we work out analytic expressions for the wave speed and the stochastic diffusion of propagating fronts uncovering the existence of an optimal balance between local and nonlocal connectivity which minimizes the fluctuations of the activation front propagation. Incorporating an activity-dependent adaptation of local excitability further highlights the independent role that local and nonlocal connectivity play in modulating the speed of propagation of the activation and silencing wavefronts, respectively. Inhomogeneities in space of local excitability give raise to a novel hysteresis phenomenon such that the speed of waves traveling in opposite directions display different velocities in the same location. Taken together these results provide insights on the multiscale organization of brain slow-waves measured during deep sleep and anesthesia.
机译:神经场模型是研究时空活动模式丰富性的有力工具,例如从大脑皮层出现的波动和颠簸。了解自发性和诱发性活动与底层网络的结构之间的关系对于展开这些系统如何处理信息至关重要。在这里,我们专注于局部特性之间的相互作用,例如输入-输出增益函数和皮质模块的递归突触自激,以及产生定义多尺度神经场的非局部模间突触耦合。在此框架中,我们针对传播速度的波速和随机扩散计算出解析表达式,揭示了局部和非局部连通性之间存在最佳平衡的存在,从而使激活前沿传播的波动最小化。结合与活动有关的局部兴奋性适应,进一步凸显了局部和非局部连接在分别调节激活和消隐波前传播速度中所起的独立作用。局部兴奋性空间中的不均匀性引起了一种新的磁滞现象,使得沿相反方向传播的波速在同一位置显示出不同的速度。这些结果加在一起提供了关于深度睡眠和麻醉期间测得的大脑慢波的多尺度组织的见解。

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