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囊泡运输和微管生长之间的动态平衡使神经突生长成为可能。

Dynamic balance between vesicle transport and microtubule growth enables neurite outgrowth.

机构信息

Department of Pharmacological Sciences and Systems Biology Center New York, Icahn School of Medicine at Mount Sinai, New York, NY, United States of America.

出版信息

PLoS Comput Biol. 2019 May 1;15(5):e1006877. doi: 10.1371/journal.pcbi.1006877. eCollection 2019 May.

Abstract

Whole cell responses involve multiple subcellular processes (SCPs). To understand how balance between SCPs controls the dynamics of whole cell responses we studied neurite outgrowth in rat primary cortical neurons in culture. We used a combination of dynamical models and experiments to understand the conditions that permitted growth at a specified velocity and when aberrant growth could lead to the formation of dystrophic bulbs. We hypothesized that dystrophic bulb formation is due to quantitative imbalances between SCPs. Simulations predict redundancies between lower level sibling SCPs within each type of high level SCP. In contrast, higher level SCPs, such as vesicle transport and exocytosis or microtubule growth characteristic of each type need to be strictly coordinated with each other and imbalances result in stalling of neurite outgrowth. From these simulations, we predicted the effect of changing the activities of SCPs involved in vesicle exocytosis or microtubule growth could lead to formation of dystrophic bulbs. siRNA ablation experiments verified these predictions. We conclude that whole cell dynamics requires balance between the higher-level SCPs involved and imbalances can terminate whole cell responses such as neurite outgrowth.

摘要

整体细胞反应涉及多个亚细胞过程(SCP)。为了了解 SCP 之间的平衡如何控制整体细胞反应的动态,我们研究了体外培养的大鼠原代皮质神经元中的突起生长。我们使用动态模型和实验的组合来了解允许以特定速度生长的条件,以及异常生长如何导致营养不良球的形成。我们假设营养不良球的形成是由于 SCP 之间的定量失衡。模拟预测每个高级 SCP 类型内的低级 SCP 之间存在冗余。相比之下,每个类型的特征性囊泡运输和胞吐作用或微管生长等高级 SCP 需要彼此严格协调,失衡会导致突起生长停滞。根据这些模拟,我们预测改变参与囊泡胞吐作用或微管生长的 SCP 的活性可能会导致营养不良球的形成。siRNA 消融实验验证了这些预测。我们得出的结论是,整体细胞动力学需要涉及的高级 SCP 之间的平衡,失衡会终止整体细胞反应,如突起生长。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/949f/6546251/f312a50384e8/pcbi.1006877.g001.jpg

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