Computational insights into mRNA and protein dynamics underlying synaptic plasticity rules

IF 2.6 3区 医学 Q3 NEUROSCIENCES
Surbhit Wagle , Nataliya Kraynyukova , Anne-Sophie Hafner , Tatjana Tchumatchenko
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引用次数: 2

Abstract

Recent advances in experimental techniques provide an unprecedented peek into the intricate molecular dynamics inside synapses and dendrites. The experimental insights into the molecular turnover revealed that such processes as diffusion, active transport, spine uptake, and local protein synthesis could dynamically modulate the copy numbers of plasticity-related molecules in synapses. Subsequently, theoretical models were designed to understand the interaction of these processes better and to explain how local synaptic plasticity cues can up or down-regulate the molecular copy numbers across synapses. In this review, we discuss the recent advances in experimental techniques and computational models to highlight how these complementary approaches can provide insight into molecular cross-talk across synapses, ultimately allowing us to develop biologically-inspired neural network models to understand brain function.

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基于突触可塑性规则的mRNA和蛋白质动力学的计算见解
实验技术的最新进展为突触和树突内部复杂的分子动力学提供了前所未有的一瞥。对分子周转的实验见解表明,扩散、主动转运、脊椎吸收和局部蛋白质合成等过程可以动态调节突触中可塑性相关分子的拷贝数。随后,设计了理论模型,以更好地理解这些过程的相互作用,并解释局部突触可塑性线索如何上调或下调突触中的分子拷贝数。在这篇综述中,我们讨论了实验技术和计算模型的最新进展,以强调这些互补的方法如何深入了解突触之间的分子串扰,最终使我们能够开发出受生物学启发的神经网络模型来理解大脑功能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
5.60
自引率
0.00%
发文量
65
审稿时长
37 days
期刊介绍: Molecular and Cellular Neuroscience publishes original research of high significance covering all aspects of neurosciences indicated by the broadest interpretation of the journal''s title. In particular, the journal focuses on synaptic maintenance, de- and re-organization, neuron-glia communication, and de-/regenerative neurobiology. In addition, studies using animal models of disease with translational prospects and experimental approaches with backward validation of disease signatures from human patients are welcome.
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