脂肪组织
干细胞
细胞生物学
伤口愈合
核糖核酸
生物
医学
生物信息学
免疫学
基因
内分泌学
生物化学
作者
Yonger Xue,Yuebao Zhang,Yichen Zhong,Shi Du,Xucheng Hou,Wenqing Li,Haoyuan Li,Siyu Wang,Chang Wang,Jinyue Yan,Diana D. Kang,Binbin Deng,David W. McComb,Darrell J. Irvine,Ron Weiss,Yizhou Dong
标识
DOI:10.1038/s41467-024-45094-5
摘要
Abstract Adipose stem cells (ASCs) have attracted considerable attention as potential therapeutic agents due to their ability to promote tissue regeneration. However, their limited tissue repair capability has posed a challenge in achieving optimal therapeutic outcomes. Herein, we conceive a series of lipid nanoparticles to reprogram ASCs with durable protein secretion capacity for enhanced tissue engineering and regeneration. In vitro studies identify that the isomannide-derived lipid nanoparticles (DIM1T LNP) efficiently deliver RNAs to ASCs. Co-delivery of self-amplifying RNA (saRNA) and E3 mRNA complex (the combination of saRNA and E3 mRNA is named SEC) using DIM1T LNP modulates host immune responses against saRNAs and facilitates the durable production of proteins of interest in ASCs. The DIM1T LNP-SEC engineered ASCs (DS-ASCs) prolong expression of hepatocyte growth factor (HGF) and C-X-C motif chemokine ligand 12 (CXCL12), which show superior wound healing efficacy over their wild-type and DIM1T LNP-mRNA counterparts in the diabetic cutaneous wound model. Overall, this work suggests LNPs as an effective platform to engineer ASCs with enhanced protein generation ability, expediting the development of ASCs-based cell therapies.
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