Department of Tissue Repair and Regeneration, The First Medical Center, Chinese PLA General Hospital, Beijing, 100853, China.
Research Center for Tissue Repair and Regeneration, Medical Innovation Research Department and the Fourth Medical Center, Chinese PLA General Hospital, Beijing, 100048, China.
Signal Transduct Target Ther. 2023 Feb 13;8(1):62. doi: 10.1038/s41392-022-01263-w.
Unhealable diabetic wounds need to be addressed with the help of newer, more efficacious strategies. Exosomes combined with biomaterials for sustained delivery of therapeutic agents are expected to bring new hope for chronic wound treatment. Here, the engineered exosomes modified for efficiently loading miR146a and attaching to silk fibroin patch (SFP) were demonstrated to promote diabetic wound healing. Silk fibroin binding peptide (SFBP) was screened through phage display, and SFBP-Gluc-MS2 (SGM) and pac-miR146a-pac fusion protein were constructed. The designed exosomes (SGM-Exos, miR146a-Exos, and SGM-miR146a-Exos) were isolated from the engineered placental mesenchymal stem cells (PMSCs) transduced with SGM or/and pac-miR146a-pac protein. Gluc signals indicated SGM-Exo@SFP markedly increased the binding rate and the stability of SGM-Exo. Moreover, the loading efficiency of miR146a in SGM-miR146a-Exos was ten-fold higher than that in miR146a-Exos. Superior to untreated, SGM-miR146a-Exo-only treated, and SFP-only treated groups, SGM-miR146a-Exo@SFP drived wound healing associated with less inflammation, collagen deposition, and neovascularization. The transcriptomics analysis suggested anti-inflammatory and regenerative effects with SGM-miR146a-Exo@SFP treatment. Here, we show efficient exosome@biomaterial-based miRNA delivery systems for regenerative medicine and tissue engineering.
需要新的、更有效的策略来治疗无法愈合的糖尿病伤口。预计与生物材料结合的外泌体用于持续递送治疗剂,将为慢性伤口治疗带来新的希望。在这里,为了有效地装载 miR146a 并附着到丝素蛋白贴片 (SFP) 而进行工程改造的外泌体被证明可以促进糖尿病伤口愈合。通过噬菌体展示筛选出丝素结合肽 (SFBP),并构建了 SFBP-Gluc-MS2 (SGM) 和 pac-miR146a-pac 融合蛋白。从转导了 SGM 或/和 pac-miR146a-pac 蛋白的工程胎盘间充质干细胞 (PMSC) 中分离出设计的外泌体 (SGM-Exos、miR146a-Exos 和 SGM-miR146a-Exos)。Gluc 信号表明 SGM-Exo@SFP 显著提高了 SGM-Exo 的结合率和稳定性。此外,SGM-miR146a-Exos 中的 miR146a 装载效率比 miR146a-Exos 高十倍。与未处理、仅 SGM-miR146a-Exo 处理和仅 SFP 处理组相比,SGM-miR146a-Exo@SFP 驱动的伤口愈合与炎症、胶原沉积和新生血管形成减少有关。转录组学分析表明 SGM-miR146a-Exo@SFP 治疗具有抗炎和再生作用。在这里,我们展示了高效的外泌体@基于生物材料的 miRNA 递送系统,用于再生医学和组织工程。