Chen Huangqin, Qiu Xin, Xia Tian, Li Qing, Wen Zhehan, Huang Bin, Li Yuesheng
Department of Stomatology, School of Stomatology and Ophthalmology, Xianning Medical College, Hubei University of Science and Technology, Xianning 437100, China.
Hubei Key Laboratory of Radiation Chemistry and Functional Materials, Non-Power Nuclear Technology Collaborative Innovation Center, Hubei University of Science and Technology, Xianning 437100, China.
Gels. 2023 Mar 9;9(3):207. doi: 10.3390/gels9030207.
Scientists have been attempting to improve the properties of mesoporous materials and expand their application since the 1990s, and the combination with hydrogels, macromolecular biological materials, is one of the research focuses currently. Uniform mesoporous structure, high specific surface area, good biocompatibility, and biodegradability make the combined use of mesoporous materials more suitable for the sustained release of loaded drugs than single hydrogels. As a joint result, they can achieve tumor targeting, tumor environment stimulation responsiveness, and multiple therapeutic platforms such as photothermal therapy and photodynamic therapy. Due to the photothermal conversion ability, mesoporous materials can significantly improve the antibacterial ability of hydrogels and offer a novel photocatalytic antibacterial mode. In bone repair systems, mesoporous materials remarkably strengthen the mineralization and mechanical properties of hydrogels, aside from being used as drug carriers to load and release various bioactivators to promote osteogenesis. In hemostasis, mesoporous materials greatly elevate the water absorption rate of hydrogels, enhance the mechanical strength of the blood clot, and dramatically shorten the bleeding time. As for wound healing and tissue regeneration, incorporating mesoporous materials can be promising for enhancing vessel formation and cell proliferation of hydrogels. In this paper, we introduce the classification and preparation methods of mesoporous material-loaded composite hydrogels and highlight the applications of composite hydrogels in drug delivery, tumor therapy, antibacterial treatment, osteogenesis, hemostasis, and wound healing. We also summarize the latest research progress and point out future research directions. After searching, no research reporting these contents was found.
自20世纪90年代以来,科学家们一直在尝试改善介孔材料的性能并扩大其应用范围,与水凝胶、高分子生物材料相结合是目前的研究热点之一。介孔结构均匀、比表面积高、生物相容性好和可生物降解性使得介孔材料与水凝胶联合使用比单一水凝胶更适合负载药物的持续释放。综合来看,它们可以实现肿瘤靶向、肿瘤环境刺激响应以及光热疗法和光动力疗法等多种治疗平台。由于具有光热转换能力,介孔材料可以显著提高水凝胶的抗菌能力,并提供一种新型的光催化抗菌模式。在骨修复系统中,介孔材料除了用作药物载体来负载和释放各种生物激活剂以促进成骨外,还能显著增强水凝胶的矿化和力学性能。在止血方面,介孔材料大大提高了水凝胶的吸水率,增强了血凝块的机械强度,并显著缩短了出血时间。至于伤口愈合和组织再生,加入介孔材料有望增强水凝胶的血管形成和细胞增殖能力。在本文中,我们介绍了负载介孔材料的复合水凝胶的分类和制备方法,并重点介绍了复合水凝胶在药物递送、肿瘤治疗、抗菌治疗、成骨、止血和伤口愈合方面的应用。我们还总结了最新的研究进展并指出了未来的研究方向。经检索,未发现报道这些内容的研究。