BioIntel Research Laboratory, Department of Chemical and Petroleum Engineering, School of Engineering , University of Kansas , Lawrence , Kansas 66045 , United States.
ACS Appl Mater Interfaces. 2019 Sep 25;11(38):34621-34633. doi: 10.1021/acsami.9b10074. Epub 2019 Sep 17.
tissue repair holds great potential as a cell-free regenerative strategy. A critical aspect of this approach is the selection of cell instructive materials that can efficiently regulate the defect microenvironment via the release of chemoattractant factors to mobilize and recruit endogenous stem cells toward the site of implantation. Here we report the design of a DNA-based hydrogel as a drug delivery platform for the sustained release of a promising chemoattractant, SDF-1α. The hydrogel is composed of chemically cross-linked DNA strands, which are bridged via silicate nanodisks (nSi). Silicate nanodisks electrostatically interact with the negatively charged DNA backbone resulting in the formation of a dual cross-linked nanocomposite hydrogel with a combination of chemical and physical cross-link points. The formulated nanocomposites display enhanced elasticity and mechanical toughness as compared to their nonsilicate containing counterparts. Moreover, the electrostatic interaction between nSi and SDF-1α leads to sustained release of the chemokine from the hydrogels. The bioactivity assays confirm the retention of chemotactic properties of the protein after its release. Overall, the dual cross-linked DNA-based hydrogel platform could be potentially used as a cell-instructive material for the recruitment of host stem cells to guide the process of tissue repair.
组织修复作为一种无细胞再生策略具有巨大的潜力。这种方法的一个关键方面是选择具有指导细胞特性的材料,这些材料可以通过释放趋化因子来有效调节缺陷微环境,从而动员和募集内源性干细胞向植入部位迁移。在这里,我们报告了一种基于 DNA 的水凝胶的设计,作为一种药物输送平台,用于持续释放有前途的趋化因子 SDF-1α。水凝胶由化学交联的 DNA 链组成,这些 DNA 链通过硅酸盐纳米盘(nSi)桥接。硅酸盐纳米盘与带负电荷的 DNA 主链静电相互作用,形成具有化学和物理交联点组合的双交联纳米复合水凝胶。与不含硅酸盐的对应物相比,所制备的纳米复合材料表现出增强的弹性和机械韧性。此外,nSi 和 SDF-1α 之间的静电相互作用导致趋化因子从水凝胶中持续释放。生物活性测定证实了蛋白质释放后趋化特性的保留。总的来说,双交联 DNA 水凝胶平台可用作募集宿主干细胞以指导组织修复过程的指导性细胞材料。