Experimental Trauma Surgery, Justus-Liebig-University Giessen, Aulweg 128, 35392 Giessen, Germany.
Department of Biomaterials, Institute for Bioprocessing and Analytical Measurement Techniques e.V. (iba), Rosenhof, 37308 Heilbad Heiligenstadt, Germany.
Molecules. 2021 Oct 16;26(20):6258. doi: 10.3390/molecules26206258.
In the context of an aging population, unhealthy Western lifestyle, and the lack of an optimal surgical treatment, deep osteochondral defects pose a great challenge for the public health system. Biodegradable, biomimetic scaffolds seem to be a promising solution. In this study we investigated the biocompatibility of porous poly-((D,L)-lactide-ε-caprolactone)dimethacrylate (LCM) scaffolds in contrast to compact LCM scaffolds and blank cell culture plastic. Thus, morphology, cytotoxicity and metabolic activity of human mesenchymal stromal cells (MSC) seeded directly on the materials were analyzed after three and six days of culturing. Further, osteoclastogenesis and osteoclastic activity were assessed using reverse-transcriptase real-time PCR of osteoclast-specific genes, EIA and morphologic aspects after four, eight, and twelve days. LCM scaffolds did not display cytotoxic effects on MSC. After three days, metabolic activity of MSC was enhanced on 3D porous scaffolds (PS) compared to 2D compact scaffolds (CS). Osteoclast activity seemed to be reduced at PS compared to cell culture plastic at all time points, while no differences in osteoclastogenesis were detectable between the materials. These results indicate a good cytocompatibility of LCM scaffolds. Interestingly, porous 3D structure induced higher metabolic activity of MSC as well as reduced osteoclast activity.
在人口老龄化、不健康的西方生活方式以及缺乏最佳手术治疗的情况下,深层骨软骨缺损对公共卫生系统构成了巨大挑战。可生物降解、仿生支架似乎是一种很有前途的解决方案。在这项研究中,我们研究了多孔聚((D,L)-丙交酯-ε-己内酯)二甲基丙烯酸酯(LCM)支架与致密 LCM 支架和空白细胞培养塑料相比的生物相容性。因此,在培养 3 天和 6 天后分析了直接接种在材料上的人间充质基质细胞(MSC)的形态、细胞毒性和代谢活性。进一步,通过逆转录实时 PCR 分析破骨细胞特异性基因、EIA 和 4、8 和 12 天后的形态学方面来评估破骨细胞生成和破骨细胞活性。LCM 支架对 MSC 没有细胞毒性作用。在第 3 天,与 2D 致密支架(CS)相比,MSC 在 3D 多孔支架(PS)上的代谢活性增强。与细胞培养塑料相比,在所有时间点 PS 上的破骨细胞活性似乎降低,而在材料之间未检测到破骨细胞生成的差异。这些结果表明 LCM 支架具有良好的细胞相容性。有趣的是,多孔 3D 结构可提高 MSC 的代谢活性并降低破骨细胞活性。