School of Pharmaceutical Sciences, Nanjing Tech University, Nanjing 211816, China.
College of Biotechnology and Pharmaceutical Engineering and School of Pharmaceutical Sciences, Nanjing Tech University, Nanjing 211816, China.
Acta Biomater. 2023 Mar 15;159:201-210. doi: 10.1016/j.actbio.2023.01.035. Epub 2023 Jan 29.
Composite MXene-based materials are prone to crack propagation, thus limiting their tensile properties. Numerous efforts have been devoted to removing material constraints and fabricating unitary MXene elastic films. Here, for the first time, inspired by the intestinal wrinkles and villi structure, we presented a ductile, biologically friendly, and highly conductive MXene-based microneedle (MMN) dressing composed of stacked MXene film and superfine microneedle arrays through a simple stretching and laser engraving strategy for wound healing. By utilizing photothermal responsive MXene, periodic porous structures, and a temperature-responsive polymer to construct the MMN dressing, the system can act as an effective route for facilitating controllable drug delivery controlled by near-infrared (NIR) irradiation. In addition, superior conductivity imparts them with the capacity to realize continuous and steady monitoring of motion sensing. The practical performance further demonstrated that the versatile MMN dressing showed obvious therapeutic efficacy in vivo animal wound models. Thus, it is believed that MMN dressings with biomimetic structures, controllable drug release, and conductive pathways will open a new chapter for wound management and widen other practical applications in biomedical fields, such as artificial tendons and soft robotics. STATEMENT OF SIGNIFICANCE: MXene-based materials have been demonstrated as critical tools in advancing our understanding of wound healing. However, the rapid crack propagation is a constraint on their tensile properties. Here, inspired by the intestinal wrinkles and villi structure, a single-step method has also been discussed to present a MXene-based microneedle dressing composed of unitary MXene elastic film and superfine microneedle arrays. At the same time, the dressing with biomimetic structures, controllable drug release, and conductive pathways has prospects in intelligent wound management and varieties of related biomedical fields.
基于 MXene 的复合材料易于发生裂纹扩展,从而限制了其拉伸性能。为了消除材料限制并制造整体 MXene 弹性薄膜,已经进行了许多努力。在这里,受肠道褶皱和绒毛结构的启发,我们首次提出了一种韧性、生物友好且具有高导电性的基于 MXene 的微针 (MMN) 敷料,它由堆叠的 MXene 薄膜和超精细微针阵列组成,通过简单的拉伸和激光雕刻策略用于伤口愈合。通过利用光热响应 MXene、周期性多孔结构和温度响应聚合物来构建 MMN 敷料,该系统可以作为一种有效的途径,通过近红外 (NIR) 照射来实现可控药物输送。此外,优异的导电性使它们能够实现运动感应的连续和稳定监测。实际性能进一步表明,多功能 MMN 敷料在体内动物伤口模型中表现出明显的治疗效果。因此,具有仿生结构、可控药物释放和导电途径的 MMN 敷料有望为伤口管理开辟新篇章,并拓宽生物医学领域的其他实际应用,如人工肌腱和软机器人。
基于 MXene 的材料已被证明是推进伤口愈合理解的重要工具。然而,快速的裂纹扩展是其拉伸性能的一个限制。在这里,受肠道褶皱和绒毛结构的启发,还讨论了一种单步方法,以呈现由整体 MXene 弹性薄膜和超精细微针阵列组成的基于 MXene 的微针敷料。同时,具有仿生结构、可控药物释放和导电途径的敷料有望在智能伤口管理和各种相关生物医学领域得到应用。