Fischell Department of Bioengineering, University of Maryland - College Park, 3121 A. James Clark Hall, 8278 Paint Branch Drive, College Park, MD 20742, United States; NIH/NBIB Center for Engineering Complex Tissues, University of Maryland - College Park, 3121 A. James Clark Hall, 8278 Paint Branch Drive, College Park, MD 20742, United States; University of Maryland School of Medicine, Baltimore, MD 21201, United States.
Fischell Department of Bioengineering, University of Maryland - College Park, 3121 A. James Clark Hall, 8278 Paint Branch Drive, College Park, MD 20742, United States.
Acta Biomater. 2020 May;108:67-76. doi: 10.1016/j.actbio.2020.03.015. Epub 2020 Mar 17.
Chronic, non-healing skin and soft tissue wounds are susceptible to infection, difficult to treat clinically, and can severely reduce a patient's quality of life. A key aspect of this issue is the impaired recruitment of mesenchymal stem cells (MSCs), which secrete regenerative cytokines and modulate the phenotypes of other effector cells that promote healing. We have engineered a therapeutic delivery system that can controllably release the pro-healing chemokine stromal cell derived factor-1α (SDF-1α) to induce the migration of MSCs. In order to protect the protein cargo from hydrolytic degradation and control its release, we have loaded SDF-1α in anionic liposomes (lipoSDF) and embedded them in gelatin methacrylate (GelMA) to form a nanocomposite hydrogel. In this study, we quantify the release of SDF-1α from our hydrogel system and measure the induced migration of MSCs in vitro via a transwell assay. Lastly, we evaluate the ability of this system to activate intracellular signaling in MSCs by using Western blots to probe for the phosphorylation of key proteins in the mTOR pathway. To our knowledge, this is the first study to report the delivery of liposomal SDF-1α using a nanocomposite approach. The results of this study expand on our current understanding of factors that can be modified to affect MSC behavior and phenotype. Furthermore, our findings contribute to the development of new hydrogel-based therapeutic delivery strategies for clinical wound healing applications. STATEMENT OF SIGNIFICANCE: Chronic, non-healing wounds promote an inflammatory environment that inhibits the migration of mesenchymal stem cells (MSCs), which secrete pro-healing and regenerative cytokines. The goal of this project is to apply principles of tissue engineering to achieve controllable release of the pro-healing chemokine SDF-1α to modulate the intracellular signaling and migratory behavior of MSCs. In this work, we introduce a nanocomposite strategy to tailor the release of SDF-1α using a liposome/gelatin methacrylate hydrogel approach. We are the first group to report the delivery of liposomal SDF-1α using this strategy. Our findings aim to further elucidate the role of MSCs in directing wound healing and guide the development of immunomodulatory and therapeutic delivery strategies for clinical wound healing applications.
慢性、非愈合性皮肤和软组织伤口容易感染,临床上难以治疗,严重降低患者的生活质量。这个问题的一个关键方面是间充质干细胞(MSCs)的募集受损,MSCs 分泌再生细胞因子,并调节促进愈合的其他效应细胞的表型。我们已经设计了一种治疗性递药系统,可以控制释放促愈合趋化因子基质细胞衍生因子-1α(SDF-1α)以诱导 MSCs 的迁移。为了保护蛋白质货物免受水解降解并控制其释放,我们将 SDF-1α装载到阴离子脂质体(lipoSDF)中,并将其嵌入明胶甲基丙烯酰胺(GelMA)中以形成纳米复合水凝胶。在这项研究中,我们定量测量了我们的水凝胶系统中 SDF-1α的释放,并通过 Transwell 测定法测量了体外 MSCs 的诱导迁移。最后,我们通过 Western blot 检测 mTOR 通路中关键蛋白的磷酸化来评估该系统激活 MSCs 细胞内信号的能力。据我们所知,这是第一项使用纳米复合方法报告脂质体 SDF-1α递药的研究。这项研究的结果扩展了我们对可以修饰以影响 MSC 行为和表型的因素的理解。此外,我们的发现为临床伤口愈合应用的新型水凝胶基治疗性递药策略的发展做出了贡献。
意义声明:慢性、非愈合性伤口会促进抑制间充质干细胞(MSCs)迁移的炎症环境,MSCs 会分泌促愈合和再生细胞因子。本项目的目标是应用组织工程原理实现促愈合趋化因子 SDF-1α的可控释放,以调节 MSCs 的细胞内信号和迁移行为。在这项工作中,我们引入了一种纳米复合策略,通过使用脂质体/明胶甲基丙烯酰胺水凝胶方法来定制 SDF-1α 的释放。我们是第一个报告使用这种策略递送脂质体 SDF-1α 的小组。我们的研究结果旨在进一步阐明 MSCs 在指导伤口愈合中的作用,并指导针对临床伤口愈合应用的免疫调节和治疗性递药策略的开发。