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Neuronal Growth Cone Size-Dependent and -Independent Parameters of Microtubule Polymerization

机译:微管聚合的神经元生长锥大小依赖性和非依赖性参数

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摘要

Migration and pathfinding of neuronal growth cones during neurite extension is critically dependent on dynamic microtubules. In this study we sought to determine, which aspects of microtubule polymerization relate to growth cone morphology and migratory characteristics. We conducted a multiscale quantitative microscopy analysis using automated tracking of microtubule plus ends in migrating growth cones of cultured murine dorsal root ganglion (DRG) neurons. Notably, this comprehensive analysis failed to identify any changes in microtubule polymerization parameters that were specifically associated with spontaneous extension vs. retraction of growth cones. This suggests that microtubule dynamicity is a basic mechanism that does not determine the polarity of growth cone response but can be exploited to accommodate diverse growth cone behaviors. At the same time, we found a correlation between growth cone size and basic parameters of microtubule polymerization including the density of growing microtubule plus ends and rate and duration of microtubule growth. A similar correlation was observed in growth cones of neurons lacking the microtubule-associated protein MAP1B. However, MAP1B-null growth cones, which are deficient in growth cone migration and steering, displayed an overall reduction in microtubule dynamicity. Our results highlight the importance of taking growth cone size into account when evaluating the influence on growth cone microtubule dynamics of different substrata, guidance factors or genetic manipulations which all can change growth cone morphology and size. The type of large scale multiparametric analysis performed here can help to separate direct effects that these perturbations might have on microtubule dynamics from indirect effects resulting from perturbation-induced changes in growth cone size.
机译:神经突生长过程中神经元生长锥的迁移和寻路关键取决于动态微管。在这项研究中,我们试图确定微管聚合的哪些方面与生长锥的形态和迁移特性有关。我们进行了多尺度定量显微镜分析,使用了自动跟踪培养的鼠背根神经节(DRG)神经元的生长锥中的微管和末端。值得注意的是,这种全面的分析未能确定微管聚合参数的任何变化,这些参数与生长锥的自发延伸与收缩有关。这表明微管动力学是一种基本的机制,它不能确定生长锥反应的极性,但可以用来适应各种生长锥行为。同时,我们发现了生长锥的大小与微管聚合的基​​本参数之间的相关性,包括生长的微管的密度加上末端以及微管生长的速率和持续时间。在缺乏微管相关蛋白MAP1B的神经元生长锥中观察到类似的相关性。但是,缺少生长锥迁移和操纵的MAP1B空生长锥显示了微管动力学的整体降低。我们的结果强调了在评估不同基质对生长锥微管动力学的影响,指导因素或遗传操作均会改变生长锥形态和尺寸的影响时,考虑生长锥大小的重要性。此处执行的大规模多参数分析类型可以帮助将这些扰动可能对微管动力学产生的直接影响与扰动引起的生长锥大小变化产生的间接影响分开。

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