Nemoz-Billet Laurie, Brocard Jacques, Ruggiero Florence, Bretaud Sandrine
Institut de Génomique Fonctionnelle de Lyon, Ecole Normale Supérieure de Lyon, UMR5242 CNRS, Université Claude Bernard-Lyon-1, 69364 Lyon, France.
PLATIM, SFR Biosciences, ENS de Lyon, Inserm US8, CNRS UMS3444, Université Claude Bernard-Lyon-1, 69364 Lyon, France.
Methods Protoc. 2023 Dec 1;6(6):116. doi: 10.3390/mps6060116.
Quantifying axonal branching is crucial for understanding neural circuit function, developmental and regeneration processes and disease mechanisms. Factors that regulate patterns of axonal arborization and tune neuronal circuits are investigated for their implication in various disorders in brain connectivity. The lack of a reliable and user-friendly method makes the quantitative analysis of axon morphology difficult. Specifically, methods to visualize and quantify the complex axon arborization are challenging to implement and apply practically. Our study was aimed at developing a robust but simple method of quantification that used ImageJ 2D analysis and compared it with Imaris visualization and analysis of 3D images. We used zebrafish fluorescent transgenic lines to perform in vivo imaging of developing motor neuron axons that adequately reflected the complexity of axonal networks. Our new method, developed on ImageJ, is easy and fast, giving access to new information such as collateral distribution along the axonal shaft. This study describes step-by-step procedures that can be easily applied to a variety of organisms and in vitro systems. Our study provides a basis for further exploration of neural circuits to gain new insights into neuronal disorders and potential therapeutic interventions.
量化轴突分支对于理解神经回路功能、发育和再生过程以及疾病机制至关重要。调节轴突分支模式和调节神经回路的因素因其在各种脑连接障碍中的作用而受到研究。缺乏可靠且用户友好的方法使得轴突形态的定量分析变得困难。具体而言,可视化和量化复杂轴突分支的方法在实际实施和应用方面具有挑战性。我们的研究旨在开发一种强大而简单的量化方法,该方法使用ImageJ二维分析,并将其与Imaris三维图像可视化和分析进行比较。我们使用斑马鱼荧光转基因品系对发育中的运动神经元轴突进行体内成像,这些轴突充分反映了轴突网络的复杂性。我们在ImageJ上开发的新方法简单快捷,能够获取诸如沿轴突干的侧支分布等新信息。本研究描述了可轻松应用于各种生物体和体外系统的分步程序。我们的研究为进一步探索神经回路以深入了解神经元疾病和潜在治疗干预提供了基础。