International Collaborative Laboratory of 2D Materials for Optoelectronics Science and Technology of Ministry of Education, College of Optoelectronic Engineering, Institute of Microscale Optoelectronics, Shenzhen Institute of Translational Medicine, Department of Otolaryngology, Shenzhen Second People's Hospital, the First Affiliated Hospital of Shenzhen University, Shenzhen University, Shenzhen 518060, China.
College of Material, Chemistry and Chemical Engineering, Hangzhou Normal University, No. 2318 Yuhangtang Rd., Cangqian, Yuhang District, Hangzhou 311121, China.
ACS Appl Mater Interfaces. 2021 Nov 24;13(46):54621-54647. doi: 10.1021/acsami.1c13634. Epub 2021 Nov 12.
Owing to the distinctive constituents of tumor tissue from those healthy organs, nanomedicine strategies show significant potentials in smart drug delivery. Nowadays, stimuli-responsive nanogels are playing increasingly important roles in the application of cancer therapy because of their sensitivity to various internal or external physicochemical stimuli, which exhibit site-specific and markedly enhanced drug release. Besides, nanogels are promising as drug carriers because of their porous structures, good biocompatibility, large surface area, and excellent capability with drugs. Taking advantage of multiresponsiveness, recent years have witnessed the rapid evolution of stimulus-responsive nanogels from monoresponsive to multiresponsive systems; however, there lacks a comprehensive review summarizing these reports. In this Review, we discuss the properties, synthesis, and characterization of nanogels. Moreover, tumor microenvironment and corresponding designing strategies for stimuli-response nanogels, both exogenous (temperature, magnetic field, light) and endogenous (pH, biomolecular, redox, ROS, pressure, hypoxia) are summarized on the basis of the recent advances in multistimuli-responsive nanogel systems. Nanogel and two-dimensional material composites show excellent performance in the field of constructing multistimulus-responsive nanoparticles and precise intelligent drug release integrated system for multimodal cancer diagnosis and therapy. Finally, potential progresses and suggestions are provided for the further design of hybrid nanogels based on emerging two-dimensional materials.
由于肿瘤组织与健康器官的独特成分不同,纳米医学策略在智能药物输送方面显示出巨大的潜力。如今,刺激响应纳米凝胶因其对各种内部或外部物理化学刺激的敏感性,在癌症治疗的应用中发挥着越来越重要的作用,其具有特异性和显著增强的药物释放。此外,由于纳米凝胶具有多孔结构、良好的生物相容性、较大的表面积和优异的载药能力,因此有望成为药物载体。近年来,利用多重响应性,刺激响应纳米凝胶已从单响应系统快速发展为多响应系统;然而,缺乏对这些报告的综合综述。在这篇综述中,我们讨论了纳米凝胶的性质、合成和表征。此外,还根据多响应纳米凝胶系统的最新进展,总结了肿瘤微环境和相应的刺激响应纳米凝胶设计策略,包括外源性(温度、磁场、光)和内源性(pH、生物分子、氧化还原、ROS、压力、缺氧)。纳米凝胶和二维材料复合材料在构建多刺激响应纳米粒子和精确智能药物释放集成系统用于多模态癌症诊断和治疗方面表现出优异的性能。最后,为基于新兴二维材料的混合纳米凝胶的进一步设计提供了潜在的进展和建议。