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加速伤口愈合:醋酸纤维素对羊水干细胞释放生物活性分子影响的系统评价

Accelerated wound closure: Systematic evaluation of cellulose acetate effects on biologically active molecules release from amniotic fluid stem cells.

作者信息

Nuge Tamrin, Liu Xiaoling, Tshai Kim Yeow, Lim Siew Shee, Nordin Norshariza, Hoque Md Enamul, Liu Ziqian

机构信息

Department of Mechanical, Materials and Manufacturing Engineering, Faculty of Science and Engineering, University of Nottingham Ningbo China, Ningbo, China.

Faculty of Science and Engineering, University of Nottingham Malaysia Campus, Jalan Broga, Semenyih, Malaysia.

出版信息

Biotechnol Appl Biochem. 2022 Jun;69(3):906-919. doi: 10.1002/bab.2162. Epub 2021 Apr 15.

Abstract

Despite a lot of intensive research on cell-scaffold interaction, the focus is mainly on the capacity of construct scaffolds to regulate cell mobility, migration, and cytotoxicity. The effect of the scaffold's topographical and material properties on the expression of biologically active compounds from stem cells is not well understood. In this study, the influence of cellulose acetate (CA) on the electrospinnability of gelatin and the roles of gelatin-cellulose acetate (Ge-CA) on modulating the release of biologically active compounds from amniotic fluid stem cells (AFSCs) is emphasized. It was found that the presence of a small amount of CA could provide a better microenvironment that mimics AFSCs' niche. However, a large amount of CA exhibited no significant effect on AFSCs migration and infiltration. Further study on the effect of surface topography and mechanical properties on AFSCs showed that the tailored microenvironment provided by the Ge-CA scaffolds had transduced physical cues to biomolecules released into the culture media. It was found that the AFSCs seeded on electrospun scaffolds with less CA proportions have profound effects on the secretion of metabolic compounds compared to those with higher CA contained and gelatin coating. The enhanced secretion of biologically active molecules by the AFSCs on the electrospun scaffolds was proven by the accelerated wound closure on the injured human dermal fibroblast (HDF) model. The rapid HDF cell migration could be anticipated due to a higher level of paracrine factors in AFSCs media. Our study demonstrates that the fibrous topography and mechanical properties of the scaffold are a key material property that modulates the high expression of biologically active compounds from the AFSCs. The discovery elucidates a new aspect of material functions and scaffolds material-AFSC interaction for regulating biomolecules release to promote tissue regeneration/repair. To the best of our knowledge, this is the first report describing the scaffolds material-AFSC interaction and the efficacy of scratch assays on quantifying the cell migration in response to the AFSCs metabolic products.

摘要

尽管对细胞与支架的相互作用进行了大量深入研究,但重点主要集中在构建支架调节细胞移动性、迁移和细胞毒性的能力上。支架的拓扑结构和材料特性对干细胞生物活性化合物表达的影响尚不清楚。在本研究中,强调了醋酸纤维素(CA)对明胶电纺性能的影响以及明胶 - 醋酸纤维素(Ge - CA)在调节羊水干细胞(AFSCs)生物活性化合物释放中的作用。发现少量CA的存在可以提供一个更好的模拟AFSCs微环境的环境。然而,大量CA对AFSCs的迁移和浸润没有显著影响。对表面拓扑结构和力学性能对AFSCs影响的进一步研究表明,Ge - CA支架提供的定制微环境已将物理信号转导至释放到培养基中的生物分子。发现与含有较高CA比例和明胶涂层的电纺支架相比,接种在CA比例较低的电纺支架上的AFSCs对代谢化合物的分泌有深远影响。AFSCs在电纺支架上生物活性分子分泌的增强通过在受伤的人皮肤成纤维细胞(HDF)模型上伤口愈合加速得到证明。由于AFSCs培养基中旁分泌因子水平较高,可以预期HDF细胞的快速迁移。我们的研究表明,支架的纤维拓扑结构和力学性能是调节AFSCs生物活性化合物高表达的关键材料特性。这一发现阐明了材料功能和支架材料与AFSCs相互作用在调节生物分子释放以促进组织再生/修复方面的新方面。据我们所知,这是第一份描述支架材料与AFSCs相互作用以及划痕试验在量化细胞对AFSCs代谢产物迁移反应中的功效的报告。

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