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Multiplicative Dynamics Underlie the Emergence of the Log-Normal Distribution of Spine Sizes in the Neocortex In Vivo

机译:体内新皮层的脊椎大小的对数正态分布的出现是乘法动力学的基础

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摘要

What fundamental properties of synaptic connectivity in the neocortex stem from the ongoing dynamics of synaptic changes? In this study, we seek to find the rules shaping the stationary distribution of synaptic efficacies in the cortex. To address this question, we combined chronic imaging of hundreds of spines in the auditory cortex of mice in vivo over weeks with modeling techniques to quantitatively study the dynamics of spines, the morphological correlates of excitatory synapses in the neocortex. We found that the stationary distribution of spine sizes of individual neurons can be exceptionally well described by a log-normal function. We furthermore show that spines exhibit substantial volatility in their sizes at timescales that range from days to months. Interestingly, the magnitude of changes in spine sizes is proportional to the size of the spine. Such multiplicative dynamics are in contrast with conventional models of synaptic plasticity, learning, and memory, which typically assume additive dynamics. Moreover, we show that the ongoing dynamics of spine sizes can be captured by a simple phenomenological model that operates at two timescales of days and months. This model converges to a log-normal distribution, bridging the gap between synaptic dynamics and the stationary distribution of synaptic efficacies.
机译:新皮质的突触连通性的哪些基本特性源于突触变化的持续动态?在这项研究中,我们试图找到塑造皮质中突触功效平稳分布的规则。为了解决这个问题,我们结合了数周内对小鼠听觉皮层中数百个棘的慢性成像与建模技术的结合,以定量研究棘的动力学,新皮层中兴奋性突触的形态相关性。我们发现单个对数神经元的脊柱大小的平稳分布可以通过对数正态函数很好地描述。我们还表明,在数天至数月不等的时间尺度上,棘突的大小显示出很大的波动性。有趣的是,脊柱大小的变化幅度与脊柱大小成正比。这种乘性动力学与通常采用附加动力学的突触可塑性,学习和记忆的传统模型形成对比。此外,我们表明,可以通过一个简单的现象模型来捕获持续的脊柱大小动态,该模型在几天和几个月的两个时间尺度上运行。该模型收敛到对数正态分布,弥合了突触动力学和突触效率的平稳分布之间的差距。

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