Hydrogel-supported poly(L-lactic acid) and polystyrene microsphere-based three-dimensional culture systems for in vitro cell expansion

IF 2.5 4区 材料科学 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY Frontiers of Materials Science Pub Date : 2024-06-06 DOI:10.1007/s11706-024-0682-z
Huaying Hao, Lihong Sun, Jiaxuan Chen, Jun Liang
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Abstract

The in vitro expansion of stem cells is important for their application in different life science fields such as cellular tissue and organ repair. An objective of this paper was to achieve static cell culture in vitro through peptide hydrogel-supported microspheres (MSs). The peptides, with their gel-forming properties, microstructures, and mechanical strengths characterized, were found to have good support for the MSs and to be injectable. The internal structures of poly(L-lactic acid) microspheres (PLLA-MSs) and polystyrene microspheres (PS-MSs) made in the laboratory were observed and statistically analyzed in terms of particle size and pore size, following which the co-cultured MSs with cells were found to have good cell adhesion. In addition, three-dimensional (3D) culturing of cells was performed on the peptide and microcarrier composite scaffolds to measure cell viability and cell proliferation. The results showed that the peptides could be stimulated by the culture medium to self-assembly form a 3D fiber network structure. Under the peptide-MS composite scaffold-based cell culture system, further enhancement of the cell culture effect was measured. The peptide-MS composite scaffolds have great potential for the application in 3D cell culture and in vitro cell expansion.

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用于体外细胞扩增的水凝胶支撑聚(L-乳酸)和聚苯乙烯微球基三维培养系统
干细胞的体外扩增对其在细胞组织和器官修复等不同生命科学领域的应用非常重要。本文的目的是通过多肽水凝胶支撑微球(MSs)实现体外静态细胞培养。研究发现,肽的凝胶形成特性、微观结构和机械强度对微球具有良好的支撑作用,并且可以注射。对实验室制备的聚(L-乳酸)微球(PLLA-MSs)和聚苯乙烯微球(PS-MSs)的内部结构进行了观察,并对粒径和孔径进行了统计分析,发现与细胞共培养的 MSs 具有良好的细胞粘附性。此外,还在多肽和微载体复合支架上进行了细胞三维(3D)培养,以测量细胞活力和细胞增殖。结果表明,多肽可在培养基的刺激下自组装形成三维纤维网络结构。在基于多肽-MS 复合支架的细胞培养体系下,细胞培养效果得到了进一步增强。肽-MS复合支架在三维细胞培养和体外细胞扩增方面具有巨大的应用潜力。
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来源期刊
Frontiers of Materials Science
Frontiers of Materials Science MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
4.20
自引率
3.70%
发文量
515
期刊介绍: Frontiers of Materials Science is a peer-reviewed international journal that publishes high quality reviews/mini-reviews, full-length research papers, and short Communications recording the latest pioneering studies on all aspects of materials science. It aims at providing a forum to promote communication and exchange between scientists in the worldwide materials science community. The subjects are seen from international and interdisciplinary perspectives covering areas including (but not limited to): Biomaterials including biomimetics and biomineralization; Nano materials; Polymers and composites; New metallic materials; Advanced ceramics; Materials modeling and computation; Frontier materials synthesis and characterization; Novel methods for materials manufacturing; Materials performance; Materials applications in energy, information and biotechnology.
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