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通过将微尺寸生物材料分散聚集到组织球体中评估三维中的细胞-材料相互作用。

Assessment of Cell-Material Interactions in Three Dimensions through Dispersed Coaggregation of Microsized Biomaterials into Tissue Spheroids.

机构信息

MERLN Institute for Technology-Inspired Regenerative Medicine, Maastricht University, P.O. Box 616, Maastricht, MD, 6200, The Netherlands.

出版信息

Small. 2022 Jul;18(29):e2202112. doi: 10.1002/smll.202202112. Epub 2022 Jun 26.

DOI:10.1002/smll.202202112
PMID:35754160
Abstract

In biomaterials R&D, conventional monolayer cell culture on flat/planar material samples, such as films, is still commonly employed at early stages of the assessment of interactions of cells with candidate materials considered for a biomedical application. In this feasibility study, an approach for the assessment of 3D cell-material interactions through dispersed coaggregation of microparticles from biomaterials into tissue spheroids is presented. Biomaterial microparticles can be created comparatively quickly and easily, allow the miniaturization of the assessment platform, and enable an unhindered remodeling of the dynamic cell-biomaterial system at any time. The aggregation of the microsized biomaterials and the cells is supported by low-attachment round-bottom microwells from thin polymer films arranged in densely packed arrays. The study is conducted by the example of MG63 osteoblast-like and human mesenchymal stem/stromal cells, and a small library of model microbiomaterials related to bone repair and regeneration. For the proof of concept, example interactions including cell adhesion to the material, the hybrid spheroids' morphology, size, and shape, material-associated cell death, cell metabolic activity, cell proliferation, and (osteogenic) differentiation are investigated. The cells in the spheroids are shown to respond to differences in the microbiomaterials' properties, their amounts, and the duration of interaction with them.

摘要

在生物材料研发中,在评估候选材料与细胞相互作用的早期阶段,仍常采用将细胞单层培养在平面材料样品(如薄膜)上的传统方法。在这项可行性研究中,提出了一种通过将生物材料的微颗粒分散聚集到组织球体中来评估 3D 细胞-材料相互作用的方法。生物材料微颗粒可以相对快速且容易地制备,允许评估平台的小型化,并能够随时不受阻碍地重塑动态细胞-生物材料系统。微尺寸生物材料和细胞的聚集由排列在密集阵列中的薄聚合物薄膜的低附着圆形底微井支持。该研究以成骨样细胞 MG63 和人间充质干细胞/基质细胞为例,并对一小部分与骨修复和再生相关的模型微生物材料进行了研究。为了验证概念,研究了包括细胞与材料的黏附、杂交球体的形态、大小和形状、材料相关的细胞死亡、细胞代谢活性、细胞增殖和(成骨)分化等示例相互作用。结果表明,球体中的细胞对微生物材料的性质、数量以及与它们相互作用的时间长短的差异有反应。

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