GliaMorph:一个模块化的图像分析工具包,量化神经胶质细胞形态

E. Kugler, Isabel Bravo, Xhuljana Durmishi, S. Marcotti, Sara Beqiri, Alicia Carrington, B. Stramer, P. Mattar, R. MacDonald
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引用次数: 2

摘要

细胞形态对所有细胞功能都至关重要。对于神经胶质细胞来说尤其如此,因为它们依靠其复杂的形状来接触和支持神经元。然而,目前还缺乏精确、可重复地量化复杂胶质细胞形状的方法。为了解决量化方法上的这一差距,我们开发了一个名为“GliaMorph”的分析管道。GliaMorph是一个模块化的图像分析工具包,用于执行(i)图像预处理,(ii)半自动感兴趣区域(ROI)选择,(iii)顶端基底纹理分析,(iv)胶质细胞分割,以及(v)细胞特征量化。勒神经胶质细胞(MG)是主要的视网膜神经胶质细胞类型,其形状与其成熟和生理状态有关。我们在三个层面上对MG进行了表征,包括(a)全局图像水平,(b)顶基纹理,(c)顶基垂直与水平对齐。使用GliaMorph,我们展示了发育中的视网膜发生的结构变化。此外,我们研究了斑马鱼视网膜中钙粘蛋白2的缺失,以及青光眼小鼠疾病模型。GliaMorph工具包能够深入了解发育和病变视网膜的MG形态。胶质细胞的形态是复杂的,这使得准确量化3D细胞形状具有挑战性。我们开发了GliaMorph工具包,用于图像预处理,胶质细胞分割和量化神经胶质细胞。在胚胎发育过程中,神经胶质细胞的形态和亚细胞特征发生了变化。GliaMorph可以准确识别神经胶质细胞受损模型中的亚细胞变化,包括斑马鱼cadherin2功能丧失和小鼠青光眼模型。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
GliaMorph: a modular image analysis toolkit to quantify Müller glial cell morphology
Cell morphology is critical for all cell functions. This is particularly true for glial cells as they rely on their complex shape to contact and support neurons. However, methods to quantify complex glial cell shape accurately and reproducibly are lacking. To address this gap in quantification approaches, we developed an analysis pipeline called “GliaMorph”. GliaMorph is a modular image analysis toolkit developed to perform (i) image pre-processing, (ii) semi-automatic region-of-interest (ROI) selection, (iii) apicobasal texture analysis, (iv) glia segmentation, and (v) cell feature quantification. Müller Glia (MG) are the principal retinal glial cell type with a stereotypic shape linked to their maturation and physiological status. We here characterized MG on three levels, including (a) global image-level, (b) apicobasal texture, and (c) apicobasal vertical-to-horizontal alignment. Using GliaMorph, we show structural changes occurring in the developing retina. Additionally, we study the loss of cadherin2 in the zebrafish retina, as well as a glaucoma mouse disease model. The GliaMorph toolkit enables an in-depth understanding of MG morphology in the developing and diseased retina. Graphical Abstract Highlights Glial morphology is complex, making it challenging to accurately quantify 3D cell shape. We developed the GliaMorph toolkit for image pre-processing, glial segmentation, and quantification of Müller glial cells. Müller glia elaborate their morphology and rearrange subcellular features during embryonic development. GliaMorph accurately identifies subcellular changes in models with disrupted glia cells, including zebrafish cadherin2 loss of function and a mouse glaucoma model.
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