旋转细胞培养系统诱导的可注射表皮干细胞自组装微组织用于全厚皮肤修复。

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS ACS Applied Bio Materials Pub Date : 2024-10-31 eCollection Date: 2024-01-01 DOI:10.7717/peerj.18418
Min Zhang, Meng Huang, Xixi Dong, Yibo Wang, Luyue Zhang, Zhaoxiang Wang, Junkai Cao
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引用次数: 0

摘要

表皮干细胞(EpSCs)对伤口愈合和组织再生至关重要,而传统的培养方法往往会导致表皮干细胞失活。提高高质量表皮干细胞的产量迫在眉睫。在这项研究中,原代 EpSCs 被分离出来,并在无血清、无馈源的培养系统中进行培养。然后,利用带有生物可降解多孔微载体(MC)的旋转细胞培养系统(RCCS)在动态三维环境中扩增 EpSCs。在 14 天的时间里,细胞自我组装成微组织,细胞增殖效果优于三维静态培养。免疫荧光和 qPCR 分析一致表明,三维微组织的干性得以保留,尤其是与抗衰老相关的 COL17A1 在 RCCS 诱导的微组织中高表达。体内实验表明,负载了EpSCs的三维微组织处理组显示出更强的早期伤口愈合能力,而且可注射的三维微组织更有利于保持细胞活力和分化潜能。我们的研究为 EpSCs 的动态三维培养提供了有价值的见解,并介绍了一种使用负载 EpSCs 的三维微组织的注射疗法,它为细胞输送提供了一种新的有效方法,为指导全厚皮肤缺损的再生提供了一种前景广阔的策略。
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Rotating cell culture system-induced injectable self-assembled microtissues with epidermal stem cells for full-thickness skin repair.

Epidermal stem cells (EpSCs) are crucial for wound healing and tissue regeneration, and traditional culture methods often lead to their inactivation. It is urgent to increase the yield of high quality EpSCs. In this study, primary EpSCs were isolated and cultured in a serum-free, feeder-free culture system. EpSCs are then expanded in a dynamic 3D environment using a rotating cell culture system (RCCS) with biodegradable porous microcarriers (MC). Over a period of 14 days, the cells self-assembled into microtissues with superior cell proliferation compared to 3D static culture. Immunofluorescence and qPCR analyses consistently showed that the stemness of the 3D microtissues was preserved, especially the COL17A1 associated with anti-aging was highly expressed in RCCS induced microtissues. In vivo experiments demonstrated that the group treated with 3D microtissues loaded with EpSCs showed enhanced early wound healing, and the injectable 3D microtissues were more conducive to maintaining cell viability and differentiation potential. Our study provides valuable insights into the dynamic 3D culture of EpSCs and introduces an injectable therapy using 3D microtissues loaded with EpSCs, which provides a new and effective approach for cell delivery and offering a promising strategy for guiding the regeneration of full-thickness skin defects.

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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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