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Tubb3 的表达水平对神经元活动的变化敏感,并决定微管的生长和驱动蛋白介导的运输。

Tubb3 expression levels are sensitive to neuronal activity changes and determine microtubule growth and kinesin-mediated transport.

机构信息

Institute for Molecular Neurogenetics, Center for Molecular Neurobiology, ZMNH, University Medical Center Hamburg-Eppendorf, Falkenried 94, 20251, Hamburg, Germany.

Institut für Nanostruktur- und Festkörperphysik, Center for Free Electron Laser Science (CFEL), University of Hamburg, Luruper Chaussee 149, 22761, Hamburg, Germany.

出版信息

Cell Mol Life Sci. 2022 Oct 29;79(11):575. doi: 10.1007/s00018-022-04607-5.

Abstract

Microtubules are dynamic polymers of α/β-tubulin. They regulate cell structure, cell division, cell migration, and intracellular transport. However, functional contributions of individual tubulin isotypes are incompletely understood. The neuron-specific β-tubulin Tubb3 displays highest expression around early postnatal periods characterized by exuberant synaptogenesis. Although Tubb3 mutations are associated with neuronal disease, including abnormal inhibitory transmission and seizure activity in patients, molecular consequences of altered Tubb3 levels are largely unknown. Likewise, it is unclear whether neuronal activity triggers Tubb3 expression changes in neurons. In this study, we initially asked whether chemical protocols to induce long-term potentiation (cLTP) affect microtubule growth and the expression of individual tubulin isotypes. We found that growing microtubules and Tubb3 expression are sensitive to changes in neuronal activity and asked for consequences of Tubb3 downregulation in neurons. Our data revealed that reduced Tubb3 levels accelerated microtubule growth in axons and dendrites. Remarkably, Tubb3 knockdown induced a specific upregulation of Tubb4 gene expression, without changing other tubulin isotypes. We further found that Tubb3 downregulation reduces tubulin polyglutamylation, increases KIF5C motility and boosts the transport of its synaptic cargo N-Cadherin, which is known to regulate synaptogenesis and long-term potentiation. Due to the large number of tubulin isotypes, we developed and applied a computational model based on a Monte Carlo simulation to understand consequences of tubulin expression changes in silico. Together, our data suggest a feedback mechanism with neuronal activity regulating tubulin expression and consequently microtubule dynamics underlying the delivery of synaptic cargoes.

摘要

微管是由α/β-微管蛋白组成的动态聚合物。它们调节细胞结构、细胞分裂、细胞迁移和细胞内运输。然而,个别微管蛋白同工型的功能贡献还不完全清楚。神经元特异性β-微管蛋白 Tubb3 在早期产后阶段表达最高,此时突触发生旺盛。虽然 Tubb3 突变与神经元疾病有关,包括患者的抑制性传递异常和癫痫活动,但 Tubb3 水平改变的分子后果在很大程度上尚不清楚。同样,尚不清楚神经元活动是否会触发神经元中 Tubb3 表达的变化。在这项研究中,我们最初询问了诱导长时程增强(cLTP)的化学方案是否会影响微管生长和个别微管蛋白同工型的表达。我们发现,生长中的微管和 Tubb3 的表达对神经元活动的变化敏感,并询问了 Tubb3 在神经元中下调的后果。我们的数据显示,Tubb3 水平降低会加速轴突和树突中的微管生长。值得注意的是,Tubb3 敲低诱导了 Tubb4 基因表达的特异性上调,而不改变其他微管蛋白同工型。我们进一步发现,Tubb3 下调会降低微管蛋白多聚谷氨酸化,增加 KIF5C 的运动,并促进其突触货物 N-钙粘蛋白的运输,已知 N-钙粘蛋白调节突触发生和长时程增强。由于微管蛋白同工型数量众多,我们开发并应用了一种基于蒙特卡罗模拟的计算模型来在计算机上理解微管蛋白表达变化的后果。总的来说,我们的数据表明,神经元活动调节微管蛋白表达,进而调节突触货物运输的微管动力学的反馈机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/748b/9617967/6c7c1110cc22/18_2022_4607_Fig1_HTML.jpg

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