Iandolo Donata, Pennacchio Fabrizio A, Mollo Valentina, Rossi Domenico, Dannhauser David, Cui Bianxiao, Owens Roisin M, Santoro Francesca
Department of Chemical Engineering and Biotechnology, University of Cambridge, UK.
Center for Advanced Biomaterials for Healthcare, Istituto Italiano di Tecnologia, 80125, Italy.
Adv Biosyst. 2019 Feb;3(2):e1800103. doi: 10.1002/adbi.201800103. Epub 2018 Oct 9.
Cell fate is largely determined by interactions that occur at the interface between cells and their surrounding microenvironment. For this reason, especially in the field of tissue-engineering, there is a growing interest in developing techniques that allow evaluating cell-material interaction at the nanoscale, particularly focusing on cell adhesion processes. While for 2D culturing systems a consolidated series of tools already satisfy this need, in 3D environments, more closely recapitulating complex in vivo structures, there is still a lack of procedures furthering the comprehension of cell-material interactions. Here, the use of scanning electron microscopy coupled with a focused ion beam (SEM/FIB) for the characterization of cell interactions with 3D scaffolds obtained by different fabrication techniques is reported for the first time. The results clearly show the capability of the developed approach to preserve and finely resolve scaffold-cell interfaces highlighting details such as plasma membrane arrangement, extracellular matrix architecture and composition, and cellular structures playing a role in cell adhesion to the surface. It is anticipated that the developed approach will be relevant for the design of efficient cell-instructive platforms in the study of cellular guidance strategies for tissue-engineering applications as well as for in vitro 3D models.
细胞命运很大程度上由细胞与其周围微环境之间界面处发生的相互作用所决定。因此,尤其是在组织工程领域,人们对开发能够在纳米尺度评估细胞与材料相互作用的技术越来越感兴趣,特别关注细胞黏附过程。虽然对于二维培养系统,一系列成熟的工具已经满足了这一需求,但在更能重现复杂体内结构的三维环境中,仍然缺乏有助于理解细胞与材料相互作用的程序。在此,首次报道了使用扫描电子显微镜结合聚焦离子束(SEM/FIB)来表征细胞与通过不同制造技术获得的三维支架之间的相互作用。结果清楚地表明,所开发的方法能够保存并精细解析支架 - 细胞界面,突出诸如质膜排列、细胞外基质结构和组成以及在细胞黏附于表面过程中起作用的细胞结构等细节。预计所开发的方法将与高效细胞指导平台的设计相关,该平台用于组织工程应用的细胞引导策略研究以及体外三维模型。