GelMA loaded with exosomes from human minor salivary gland organoids enhances wound healing by inducing macrophage polarization

类有机物 微泡 巨噬细胞极化 伤口愈合 细胞生物学 唾液腺 化学 巨噬细胞 外体 生物 体外 小RNA 免疫学 生物化学 基因
作者
Jiaying Qian,Enhang Lu,Haibo Xiang,Pengbing Ding,Zheng Wang,Zhiyu Lin,Bailin Pan,Chen Zhang,Zhenmin Zhao
出处
期刊:Journal of Nanobiotechnology [BioMed Central]
卷期号:22 (1): 550-550 被引量:23
标识
DOI:10.1186/s12951-024-02811-y
摘要

Non-healing skin wounds pose significant clinical challenges, with biologic products like exosomes showing promise for wound healing. Saliva and saliva-derived exosomes, known to accelerate wound repair, yet their extraction is difficult due to the complex environment of oral cavity. In this study, as a viable alternative, we established human minor salivary gland organoids (hMSG-ORG) to produce exosomes (MsOrg-Exo). In vitro, MsOrg-Exo significantly enhanced cell proliferation, migration, and angiogenesis. When incorporated into a GelMA-based controlled-release system, MsOrg-Exo demonstrated controlled release, effectively improving wound closure, collagen synthesis, angiogenesis, and cellular proliferation in a murine skin wound model. Further molecular analyses revealed that MsOrg-Exo promotes proliferation, angiogenesis and the secretion of growth factors in wound sites. Proteomic profiling showed that MsOrg-Exo's protein composition is similar to human saliva and enriched in proteins essential for wound repair, immune modulation, and coagulation. Additionally, MsOrg-Exo was found to modulate macrophage polarization, inducing a shift towards M1 and M2 phenotypes in vitro within 48 h and predominantly towards the M2 phenotype in vivo after 15 days. In conclusion, our study successfully extracted MsOrg-Exo from hMSG-ORGs, confirmed the effectiveness of the controlled-release system combining MsOrg-Exo with GelMA in promoting skin wound healing, and explored the potential role of macrophages in this action.
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