Guo Yuqiong, He Xinni, Williams Gareth R, Zhou Yue, Liao Xinying, Xiao Ziyi, Yu Cuiyun, Liu Yang
Hunan Provincial Key Laboratory of Tumor Microenvironment Responsive Drug Research, Hunan Province Cooperative Innovation Center for Molecular Target New Drug Study, School of Pharmaceutical Science, Hengyang Medical School, University of South China, Hengyang, Hunan, 421001, China.
UCL School of Pharmacy, University College London, London, WC1N1AX, UK.
J Pharm Anal. 2024 Dec;14(12):101003. doi: 10.1016/j.jpha.2024.101003. Epub 2024 May 22.
Hyperbranched polymers (HBPs) have drawn great interest in the biomedical field on account of their special morphology, low viscosity, self-regulation, and facile preparation methods. Moreover, their large intramolecular cavities, high biocompatibility, biodegradability, and targeting properties render them very suitable for anti-tumor drug delivery. Recently, exploiting the specific characteristics of the tumor microenvironment, a range of multifunctional HBPs responsive to the tumor microenvironment have emerged. By further introducing various types of drugs through physical embedding or chemical coupling, the resulting HBPs based delivery systems have played a crucial part in improving drug stability, increasing effective drug concentration, decreasing drug toxicity and side effects, and enhancing anti-tumor effect. Here, based on different types of tumor microenvironment stimulation signals such as pH, redox, temperature, etc., we systematically review the preparation and response mechanism of HBPs, summarize the latest advances in drug delivery applications, and analyze the challenges and future research directions for such nanomaterials in biomedical clinical applications.
超支化聚合物(HBPs)因其特殊的形态、低粘度、自我调节能力和简便的制备方法而在生物医学领域引起了极大的关注。此外,它们较大的分子内空腔、高生物相容性、生物可降解性和靶向特性使其非常适合用于抗肿瘤药物递送。近年来,利用肿瘤微环境的特定特征,出现了一系列对肿瘤微环境有响应的多功能超支化聚合物。通过物理包埋或化学偶联进一步引入各类药物,由此产生的基于超支化聚合物的递送系统在提高药物稳定性、增加有效药物浓度、降低药物毒性和副作用以及增强抗肿瘤效果方面发挥了关键作用。在此,基于pH、氧化还原、温度等不同类型的肿瘤微环境刺激信号,我们系统地综述了超支化聚合物的制备及响应机制,总结了药物递送应用的最新进展,并分析了此类纳米材料在生物医学临床应用中的挑战和未来研究方向。