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超分辨率成像和对模型神经元中微管阵列的定量分析表明,埃坡霉素 D 增加了轴突样突起中微管的密度,但降低了其长度和直线度。

Super-resolution imaging and quantitative analysis of microtubule arrays in model neurons show that epothilone D increases the density but decreases the length and straightness of microtubules in axon-like processes.

机构信息

Department of Neurobiology, Osnabrück University, Osnabrück, Germany.

Center for Cellular Nanoanalytics, Osnabrück University, Osnabrück, Germany.

出版信息

Brain Res Bull. 2022 Nov;190:234-243. doi: 10.1016/j.brainresbull.2022.10.008. Epub 2022 Oct 13.

Abstract

Microtubules are essential for the development of neurons and the regulation of their structural plasticity. Microtubules also provide the structural basis for the long-distance transport of cargo. Various factors influence the organization and dynamics of neuronal microtubules, and disturbance of microtubule regulation is thought to play a central role in neurodegenerative diseases. However, imaging and quantitative assessment of the microtubule organization in the densely packed neuronal processes is challenging. The development of super-resolution techniques combined with the use of nanobodies offers new possibilities to visualize microtubules in neurites in high resolution. In combination with recently developed computational analysis tools, this allows automated quantification of neuronal microtubule organization with high precision. Here we have implemented three-dimensional DNA-PAINT (Point Accumulation in Nanoscale Topography), a single-molecule localization microscopy (SMLM) technique, which allows us to acquire 3D arrays of the microtubule lattice in axons of model neurons (neuronally differentiated PC12 cells) and dendrites of primary neurons. For the quantitative analysis of the microtubule organization, we used the open-source software package SMLM image filament extractor (SIFNE). We found that treatment with nanomolar concentrations of the microtubule-targeting drug epothilone D (EpoD) increased microtubule density in axon-like processes of model neurons and shifted the microtubule length distribution to shorter ones, with a mean microtubule length of 2.39 µm (without EpoD) and 1.98 µm (with EpoD). We also observed a significant decrease in microtubule straightness after EpoD treatment. The changes in microtubule density were consistent with live-cell imaging measurements of ensemble microtubule dynamics using a previously established Fluorescence Decay After Photoactivation (FDAP) assay. For comparison, we determined the organization of the microtubule array in dendrites of primary hippocampal neurons. We observed that dendritic microtubules have a very similar length distribution and straightness compared to microtubules in axon-like processes of a neuronal cell line. Our data show that super-resolution imaging of microtubules followed by algorithm-based image analysis represents a powerful tool to quantitatively assess changes in microtubule organization in neuronal processes, useful to determine the effect of microtubule-modulating conditions. We also provide evidence that the approach is robust and can be applied to neuronal cell lines or primary neurons, both after incorporation of labeled tubulin and by anti-tubulin antibody staining.

摘要

微管对于神经元的发育和结构可塑性的调节至关重要。微管还为货物的长距离运输提供了结构基础。各种因素影响神经元微管的组织和动态,微管调节的紊乱被认为在神经退行性疾病中起着核心作用。然而,对密集排列的神经元突起中的微管组织进行成像和定量评估具有挑战性。超分辨率技术的发展结合纳米体的使用为在神经突中高分辨率可视化微管提供了新的可能性。结合最近开发的计算分析工具,这允许以高精度自动量化神经元微管组织。在这里,我们实现了三维 DNA-PAINT(点在纳米拓扑学中的积累),这是一种单分子定位显微镜(SMLM)技术,允许我们在模型神经元(神经分化的 PC12 细胞)的轴突和原代神经元的树突中获取微管晶格的 3D 阵列。为了对微管组织进行定量分析,我们使用了开源软件包 SMLM 图像灯丝提取器(SIFNE)。我们发现,用纳摩尔浓度的微管靶向药物埃博霉素 D(EpoD)处理会增加模型神经元轴突样突起中的微管密度,并将微管长度分布转移到更短的长度,平均微管长度为 2.39µm(无 EpoD)和 1.98µm(有 EpoD)。我们还观察到 EpoD 处理后微管直度显著降低。微管密度的变化与使用先前建立的荧光衰减后光激活(FDAP)测定法对聚集体微管动力学进行的活细胞成像测量一致。作为比较,我们确定了原代海马神经元树突中微管阵列的组织。我们观察到与神经元细胞系的轴突样突起中的微管相比,树突微管具有非常相似的长度分布和直度。我们的数据表明,微管的超分辨率成像随后进行基于算法的图像分析代表了一种强大的工具,可以定量评估神经元突起中微管组织的变化,有助于确定微管调节条件的影响。我们还提供了证据表明该方法是稳健的,可以应用于神经元细胞系或原代神经元,无论是在掺入标记的微管后还是通过抗微管蛋白抗体染色后。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1f14/9634454/131d2d2e307d/ga1.jpg

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