Department of Biomedical Engineering, Technion-Israel Institute of Technology, Haifa, Israel.
Department of Chemical Engineering, Technion-Israel Institute of Technology, Haifa, Israel.
J Tissue Eng Regen Med. 2019 Apr;13(4):587-598. doi: 10.1002/term.2813. Epub 2019 Mar 19.
The present investigation explores the microscopic aspects of cell-laden hydrogels at high resolutions, using three-dimensional cell cultures in semi-synthetic constructs that are of very high water content (>98% water). The study aims to provide an imaging strategy for these constructs, while minimizing artefacts. Constructs of poly(ethylene glycol)-fibrinogen and fibrin hydrogels containing embedded mesenchymal cells (human dermal fibroblasts) were first imaged by confocal microscopy. Next, high-resolution scanning electron microscopy (HR-SEM) was used to provide images of the cells within the hydrogels, at submicron resolutions. Because it was not possible to obtain artefact-free images of the hydrogels using room-temperature HR-SEM, a cryogenic HR-SEM imaging methodology was employed to visualize the sample while preserving the natural hydrated state of the hydrogel. The ultrastructural details of the constructs were observed at subcellular resolutions, revealing numerous cellular components, the biomaterial in its native configuration, and the uninterrupted cell membrane as it relates with the biomaterial in the hydrated state of the construct. Constructs containing microscopic albumin microbubbles were also imaged using these methodologies to reveal fine details of the interaction between the cells, the microbubbles, and the hydrogel. Taken together with the confocal microscopy, this imaging strategy provides a more complete picture of the hydrated state of the hydrogel network with cells inside. As such, this methodology addresses some of the challenges of obtaining this information in amorphous hydrogel systems containing a very high water content (>98%) with embedded cells. Such insight may lead to better hydrogel-based strategies for tissue engineering and regeneration.
本研究以高含水量 (>98%)的含细胞半合成水凝胶三维培养物为模型,探索了高分辨率下细胞填充水凝胶的微观结构,旨在为这些结构提供一种成像策略,同时最大限度地减少伪影。首先,通过共聚焦显微镜对含有嵌入间充质细胞(人真皮成纤维细胞)的聚乙二醇-纤维蛋白原和纤维蛋白水凝胶构建体进行成像。接下来,使用高分辨率扫描电子显微镜 (HR-SEM) 以亚微米分辨率提供水凝胶内细胞的图像。由于在室温下使用 HR-SEM 无法获得无伪影的水凝胶图像,因此采用了低温 HR-SEM 成像方法来可视化样品,同时保持水凝胶的天然水合状态。以亚细胞分辨率观察构建体的超微结构细节,揭示了大量的细胞成分、天然配置的生物材料以及与水合状态下构建体中的生物材料相连的未中断的细胞膜。使用这些方法还对含有微观白蛋白微泡的构建体进行成像,以揭示细胞、微泡和水凝胶之间相互作用的细微细节。与共聚焦显微镜相结合,这种成像策略提供了水凝胶网络与内部细胞的水合状态的更完整图像。因此,这种方法解决了在含有高含水量 (>98%)和嵌入细胞的无定形水凝胶系统中获取这些信息的一些挑战。这种见解可能会导致更好的基于水凝胶的组织工程和再生策略。