干细胞
慢性伤口
干细胞疗法
伤口愈合
细胞
细胞疗法
材料科学
活力测定
生物医学工程
癌症研究
医学
细胞存活
组织修复
细胞生物学
组织工程
纳米技术
细胞功能
氧合物
细胞迁移
细胞包封
再生(生物学)
认知重构
再生医学
作者
Wei Huang,Yihui Zhang,Mingyu Chen,Jian‐Hang Zhang,Lei Qiao,Zong-Huan Ba,Hongjie Gao,Jing Zang,Xuan Liu,Wen-Qian Liu,Ye‐Zi You,Long‐Hai Wang
摘要
ABSTRACT Stem cell‐based therapies hold substantial promise for the treatment of chronic wounds. However, limited clinical efficacy has frequently arisen not from inadequate cell potency, but from failure of current delivery paradigms to sustain cell survival and function within hostile host microenvironments. Here, we report a wound‐adaptive, self‐oxygenating stem cell encapsulation platform designed to overcome this delivery paradigm failure. The device embeds living stem cells within an immunoisolating hydrogel matrix conformally shaped to individual wound geometries and converts locally accumulated CO 2 into molecular O 2 , thereby providing an oxygen supply that preserves cellular metabolic activity in situ. Importantly, oxygenation in this system functions primarily to sustain cell viability rather than to directly oxygenate host tissue. Compared with conventional local or systemic delivery strategies, encapsulated cells exhibit markedly enhanced survival, persistence, and therapeutic function. Evaluation in diabetic rat and porcine wound models demonstrates accelerated resolution of inflammation, improved vascular maturation, and robust tissue regeneration. By reframing cell therapy as a problem of environment‐cell compatibility, this platform establishes a clinically translatable delivery paradigm for precision stem cell therapy in chronic wound repair.
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