Affiliation:
1. Research Center for Tissue Repair and Regeneration Affiliated to the Medical Innovation Research Department PLA General Hospital Beijing 100853 P. R. China
2. Chinese PLA Medical School Beijing 100853 P. R. China
3. Research Unit of Trauma Care Tissue Repair and Regeneration Chinese Academy of Medical Sciences 2019RU051 Beijing 100048 P. R. China
4. PLA Key Laboratory of Tissue Repair and Regenerative Medicine and Beijing Key Research Laboratory of Skin Injury Repair and Regeneration Beijing 100048 P. R. China
5. Innovation Center for Wound Repair West China Hospital Sichuan University Chengdu Sichuan Province 610041 P. R. China
6. Department of Burns and Plastic Surgery The Seventh Affiliated Hospital of Sun Yat‐sen University Shenzhen Guangdong Province 518107 P. R. China
Abstract
AbstractHypertrophic scar (HS) is a common fibroproliferative disease caused by abnormal wound healing after deep skin injury. However, the existing approaches have unsatisfactory therapeutic effects, which promote the exploration of newer and more effective strategies. MiRNA‐modified functional exosomes delivered by dissolvable microneedle arrays (DMNAs) are expected to provide new hope for HS treatment. In this study, a miRNA, miR‐141‐3p, which is downregulated in skin scar tissues and in hypertrophic scar fibroblasts (HSFs), is identified. MiR‐141‐3p mimics inhibit the proliferation, migration, and myofibroblast transdifferentiation of HSFs in vitro by targeting TGF‐β2 to suppress the TGF‐β2/Smad pathway. Subsequently, the engineered exosomes encapsulating miR‐141‐3p (miR‐141‐3pOE‐Exos) are isolated from adipose‐derived mesenchymal stem cells transfected with Lv‐miR‐141‐3p. MiR‐141‐3pOE‐Exos show the same inhibitive effects as miR‐141‐3p mimics on the pathological behaviors of HSFs in vitro. The DMNAs for sustained release of miR‐141‐3pOE‐Exos are further fabricated in vivo. MiR‐141OE‐Exos@DMNAs effectively decrease the thickness of HS and improve fibroblast distribution and collagen fiber arrangement, and downregulate the expression of α‐SMA, COL‐1, FN, TGF‐β2, and p‐Smad2/3 in the HS tissue. Overall, a promising, effective, and convenient exosome@DMNA‐based miRNA delivery strategy for HS treatment is provided.
Funder
West China Hospital, Sichuan University
National Natural Science Foundation of China
Subject
Biomaterials,Biotechnology,General Materials Science,General Chemistry
Cited by
15 articles.
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