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早期小脑发育过程中浦肯野细胞树突选择的模型。

Models of Purkinje cell dendritic tree selection during early cerebellar development.

机构信息

Computational Neuroscience Unit, Okinawa Institute of Science and Technology Graduate University, Tancha, Okinawa, Japan.

Department and Graduate Institute of Pharmacology, National Taiwan University College of Medicine, Taipei City, Taiwan.

出版信息

PLoS Comput Biol. 2023 Jul 24;19(7):e1011320. doi: 10.1371/journal.pcbi.1011320. eCollection 2023 Jul.

Abstract

We investigate the relationship between primary dendrite selection of Purkinje cells and migration of their presynaptic partner granule cells during early cerebellar development. During postnatal development, each Purkinje cell grows more than three dendritic trees, from which a primary tree is selected for development, whereas the others completely retract. Experimental studies suggest that this selection process is coordinated by physical and synaptic interactions with granule cells, which undergo a massive migration at the same time. However, technical limitations hinder continuous experimental observation of multiple cell populations. To explore possible mechanisms underlying this selection process, we constructed a computational model using a new computational framework, NeuroDevSim. The study presents the first computational model that simultaneously simulates Purkinje cell growth and the dynamics of granule cell migrations during the first two postnatal weeks, allowing exploration of the role of physical and synaptic interactions upon dendritic selection. The model suggests that interaction with parallel fibers is important to establish the distinct planar morphology of Purkinje cell dendrites. Specific rules to select which dendritic trees to keep or retract result in larger winner trees with more synaptic contacts than using random selection. A rule based on afferent synaptic activity was less effective than rules based on dendritic size or numbers of synapses.

摘要

我们研究了小脑发育早期浦肯野细胞的初级树突选择与它们的突触前伙伴颗粒细胞迁移之间的关系。在出生后发育过程中,每个浦肯野细胞会生长出三个以上的树突,其中一个树突会被选择进行发育,而其他树突则会完全缩回。实验研究表明,这个选择过程是由与颗粒细胞的物理和突触相互作用协调的,颗粒细胞在同一时间经历大规模迁移。然而,技术限制阻碍了对多个细胞群体的连续实验观察。为了探索这个选择过程的潜在机制,我们使用新的计算框架 NeuroDevSim 构建了一个计算模型。该研究提出了第一个同时模拟浦肯野细胞生长和颗粒细胞在出生后前两周内迁移动力学的计算模型,允许探索物理和突触相互作用对树突选择的影响。该模型表明,与平行纤维的相互作用对于建立浦肯野细胞树突的独特平面形态很重要。与随机选择相比,使用特定规则来选择保留或缩回哪个树突会产生具有更多突触接触的更大获胜树突。基于传入突触活动的规则不如基于树突大小或突触数量的规则有效。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6544/10399850/e46f66bcd08d/pcbi.1011320.g001.jpg

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