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Nanoscale Imaging of Collagen Gels with Focused Ion Beam Milling and Scanning Electron Microscopy

机译:聚焦离子束铣削和扫描电子显微镜对胶原蛋白凝胶的纳米成像

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摘要

In vitro polymerized type I collagen hydrogels have been used extensively as a model system for three-dimensional (3D) cell and tissue culture, studies of fibrillogenesis, and investigation of multiscale force transmission within connective tissues. The nanoscale organization of collagen fibrils plays an essential role in the mechanics of these gels and emergent cellular behavior in culture, yet quantifying 3D structure with nanoscale resolution to fully characterize fibril organization remains a significant technical challenge. In this study, we demonstrate that a new imaging modality, focused ion beam scanning electron microscopy (FIB-SEM), can be used to generate 3D image datasets for visualizing and quantifying complex nanoscale organization and morphometry in collagen gels. We polymerized gels at a number of concentrations and conditions commonly used for in vitro models, stained and embedded the samples, and performed FIB-SEM imaging. The resulting image data had a voxel size of 25 nm, which is the highest resolution 3D data of a collagen fibril network ever obtained for collagen gels. This resolution was essential for discerning individual fibrils, fibril paths, and their branching and grouping. The resulting volumetric images revealed that polymerization conditions have a significant impact on the complex fibril morphology of the gels. We segmented the fibril network and demonstrated that individual collagen fibrils can be tracked in 3D space, providing quantitative analysis of network descriptors such as fibril diameter distribution, length, branch points, and fibril aggregations. FIB-SEM 3D reconstructions showed considerably less lateral grouping and overlap of fibrils than standard 2D SEM images, likely due to artifacts in SEM introduced by dehydration. This study demonstrates the utility of FIB-SEM for 3D imaging of collagen gels and quantitative analysis of 3D fibril networks. We anticipate that the method will see application in future studies of structure-function relationships in collagen gels as well as native collagenous tissues.
机译:在体外聚合的I型胶原蛋白水凝胶已广泛用作三维(3D)细胞和组织培养,原纤维形成研究以及结缔组织内多尺度力传递研究的模型系统。胶原纤维的纳米级组织在这些凝胶的力学和培养中新出现的细胞行为中起着至关重要的作用,然而以纳米级分辨率量化3D结构以充分表征纤维组织仍然是一项重大的技术挑战。在这项研究中,我们证明了一种新的成像方式,即聚焦离子束扫描电子显微镜(FIB-SEM),可用于生成3D图像数据集,以可视化和量化胶原蛋白凝胶中复杂的纳米级组织和形态。我们在体外模型中常用的许多浓度和条件下聚合了凝胶,对样品进行了染色和包埋,然后进行了FIB-SEM成像。所得图像数据的体素大小为25 nm,这是有史以来针对胶原蛋白凝胶获得的胶原原纤维网络的最高分辨率3D数据。该分辨率对于辨别单个原纤维,原纤维路径及其分支和分组至关重要。所得的体积图像显示,聚合条件对凝胶的复杂原纤维形态具有重大影响。我们对原纤维网络进行了细分,并证明了可以在3D空间中跟踪单个胶原原纤维,从而提供了对网络描述符(例如原纤维直径分布,长度,分支点和原纤维聚集体)的定量分析。与标准2D SEM图像相比,FIB-SEM 3D重建显示出的原纤维横向分组和重叠明显更少,这可能是由于SEM脱水导致的伪影。这项研究证明了FIB-SEM在胶原蛋白凝胶3D成像和3D原纤维网络定量分析中的实用性。我们预计该方法将在胶原凝胶以及天然胶原组织的结构-功能关系的未来研究中得到应用。

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