John Johnson V, Sharma Navatha Shree, Tang Guosheng, Luo Zeyu, Su Yajuan, Weihs Shelbie, Shahriar S M Shatil, Wang Guangshun, McCarthy Alec, Dyke Justin, Zhang Yu Shrike, Khademhosseini Ali, Xie Jingwei
Department of Surgery-Transplant and Mary & Dick Holland Regenerative Medicine Program, College of Medicine, University of Nebraska Medical Center, Omaha, Nebraska 68198, United States.
Terasaki Institute for Biomedical Innovation, Los Angeles, CA, 90064, United States.
Adv Funct Mater. 2023 Jan 3;33(1). doi: 10.1002/adfm.202206936. Epub 2022 Oct 31.
Fast healing of diabetic wounds remains a major clinical challenge. Herein, this work reports a strategy to combine nanofiber aerogels containing precision macrochannels and the LL-37-mimic peptide W379 for rapid diabetic wound healing. Nanofiber aerogels consisting of poly(glycolide--lactide) (PGLA 90:10)/gelatin and poly--dioxanone (PDO)/gelatin short electrospun fiber segments were prepared by partially anisotropic freeze-drying, crosslinking, and sacrificial templating with three-dimensional (3D)-printed meshes, exhibiting nanofibrous architecture and precision micro-/macrochannels. Like human cathelicidin LL-37, W379 peptide at a concentration of 3 μg/mL enhanced the migration and proliferation of keratinocytes and dermal fibroblasts in a cell scratch assay and a proliferation assay. studies show that nanofiber aerogels with precision macrochannels can greatly promote cell penetration compared to aerogels without macrochannels. Relative to control and aerogels with and without macrochannels, adding W379 peptides to aerogels with precision macrochannels shows the best efficacy in healing diabetic wounds in mice in terms of cell infiltration, neovascularization, and re-epithelialization. The fast re-epithelization could be due to upregulation of phospho-extracellular signal-regulated kinase (p38 MAPK) after treatment with W379. Together, the approach developed in this work could be promising for the treatment of diabetic wounds and other chronic wounds.
糖尿病伤口的快速愈合仍然是一项重大的临床挑战。在此,本研究报告了一种将含有精密宏观通道的纳米纤维气凝胶与LL-37模拟肽W379相结合的策略,用于快速愈合糖尿病伤口。由聚(乙交酯-丙交酯)(PGLA 90:10)/明胶和聚对二氧环己酮(PDO)/明胶短电纺纤维段组成的纳米纤维气凝胶通过部分各向异性冷冻干燥、交联以及用三维(3D)打印网格进行牺牲模板法制备而成,呈现出纳米纤维结构和精密的微/宏观通道。与人类抗菌肽LL-37一样,浓度为3μg/mL的W379肽在细胞划痕试验和增殖试验中增强了角质形成细胞和真皮成纤维细胞的迁移和增殖。研究表明,与没有宏观通道的气凝胶相比,具有精密宏观通道的纳米纤维气凝胶能够极大地促进细胞渗透。相对于对照以及有和没有宏观通道的气凝胶,在具有精密宏观通道的气凝胶中添加W379肽在小鼠糖尿病伤口愈合方面,在细胞浸润、新血管形成和重新上皮化方面显示出最佳疗效。快速的重新上皮化可能是由于用W379处理后磷酸化细胞外信号调节激酶(p38 MAPK)上调所致。总之,本研究开发的方法在治疗糖尿病伤口和其他慢性伤口方面可能具有前景。