Wu Jinghua, Li Huapeng, Zhang Nan, Zheng Qingfei
Department of Radiation Oncology, College of Medicine, The Ohio State University, Columbus, OH 43210, USA.
Center for Cancer Metabolism, James Comprehensive Cancer Center, The Ohio State University, Columbus, OH 43210, USA.
Gels. 2024 Jul 17;10(7):471. doi: 10.3390/gels10070471.
Hydrogels are one of the most commonly used materials in our daily lives, which possess crosslinked three-dimensional network structures and are capable of absorbing large amounts of fluid. Due to their outstanding properties, such as flexibility, tunability, and biocompatibility, hydrogels have been widely employed in biomedical research and clinics, especially in on-demand drug release. However, traditional hydrogels face various limitations, e.g., the delivery of hydrophobic drugs due to their highly hydrophilic interior environment. Therefore, micelle-containing hydrogels have been designed and developed, which possess both hydrophilic and hydrophobic microenvironments and enable the storage of diverse cargos. Based on the functionalities of micelles, these hydrogels can be classified into micelle-doped and chemically/physically crosslinked types, which were reported to be responsive to varied stimuli, including temperature, pH, irradiation, electrical signal, magnetic field, etc. Here, we summarize the research advances of micelle-containing hydrogels and provide perspectives on their applications in the biomedical field based on the recent studies from our own lab and others.
水凝胶是我们日常生活中最常用的材料之一,它具有交联的三维网络结构,能够吸收大量液体。由于其出色的性能,如柔韧性、可调性和生物相容性,水凝胶已广泛应用于生物医学研究和临床,尤其是在按需药物释放方面。然而,传统水凝胶面临各种局限性,例如由于其高度亲水的内部环境而难以递送疏水药物。因此,含胶束水凝胶被设计和开发出来,它具有亲水和疏水微环境,能够储存多种货物。基于胶束的功能,这些水凝胶可分为胶束掺杂型和化学/物理交联型,据报道它们对包括温度、pH值、辐射、电信号、磁场等在内的各种刺激有响应。在此,我们总结了含胶束水凝胶的研究进展,并根据我们自己实验室和其他实验室的最新研究,对其在生物医学领域的应用前景进行展望。