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通过微流控辅助微管蛋白洗脱探究微管老化

Microtubule aging probed by microfluidics-assisted tubulin washout.

作者信息

Duellberg Christian, Cade Nicholas Ian, Surrey Thomas

机构信息

Lincoln's Inn Fields Laboratory, Francis Crick Institute, London WC2A 3LY, United Kingdom.

Lincoln's Inn Fields Laboratory, Francis Crick Institute, London WC2A 3LY, United Kingdom

出版信息

Mol Biol Cell. 2016 Nov 7;27(22):3563-3573. doi: 10.1091/mbc.E16-07-0548. Epub 2016 Aug 3.

Abstract

Microtubules switch stochastically between phases of growth and shrinkage. The molecular mechanism responsible for the end of a growth phase, an event called catastrophe, is still not understood. The probability for a catastrophe to occur increases with microtubule age, putting constraints on the possible molecular mechanism of catastrophe induction. Here we used microfluidics-assisted fast tubulin washout experiments to induce microtubule depolymerization in a controlled manner at different times after the start of growth. We found that aging can also be observed in this assay, providing valuable new constraints against which theoretical models of catastrophe induction can be tested. We found that the data can be quantitatively well explained by a simple kinetic threshold model that assumes an age-dependent broadening of the protective cap at the microtubule end as a result of an evolving tapered end structure; this leads to a decrease of the cap density and its stability. This analysis suggests an intuitive picture of the role of morphological changes of the protective cap for the age dependence of microtubule stability.

摘要

微管在生长和收缩阶段之间随机切换。导致生长阶段结束(即所谓的灾变事件)的分子机制仍不清楚。灾变发生的概率随微管年龄增加,这对灾变诱导的可能分子机制施加了限制。在这里,我们使用微流控辅助的快速微管蛋白洗脱实验,在生长开始后的不同时间以可控方式诱导微管解聚。我们发现在该实验中也能观察到老化现象,这为检验灾变诱导的理论模型提供了有价值的新限制条件。我们发现,一个简单的动力学阈值模型可以很好地定量解释这些数据,该模型假设由于微管末端逐渐变细的结构变化,微管末端的保护帽会随着年龄增长而变宽;这会导致帽密度及其稳定性降低。该分析为保护帽形态变化对微管稳定性年龄依赖性的作用提供了直观的描述。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c76b/5221588/73063d864755/3563fig1.jpg

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