化学
胶束
赫拉
药物输送
生物物理学
费斯特共振能量转移
前药
药品
阿霉素
细胞内
组合化学
荧光
纳米颗粒
纳米技术
生物化学
有机化学
材料科学
细胞
水溶液
医学
物理
外科
化疗
量子力学
生物
心理学
精神科
作者
Junyang Zhong,Yusi Quan,Xiaoya Zhao,Suifei Li,Ziqing He,Guodong Ye,Mingna Sun,Yingling Miao,Chunping Ma,Huikang Yang,Xing Chen,Yugang Huang
出处
期刊:Biomaterials advances
日期:2022-02-14
卷期号:134: 112711-112711
被引量:7
标识
DOI:10.1016/j.msec.2022.112711
摘要
The pH-responsive polymeric micelles (PMs) have been widely used as smart nano drug delivery systems to treat tumors. However, synchronously manipulating these PMs' self-assembly properties, drug release dynamics and tracing their pH-dependent intracellular fate remain challenges. Herein, we have first synthesized hyaluronic acid (HA) based glycopolypeptides modified by tetraphenylethylene (TPE) and a pH-sensitive doxorubicin (DOX) prodrug through Diels-Alder reaction, respectively. Then, the pH-responsive nanocomplexes (NCs) were prepared by coassembling the two obtained glycopolypeptides with different formulations. Controllable size within the range of 60–125 nm and morphologies like spherical, vesicular and oblate micelles can be easily accomplished by using this method; High drug encapsulating and loading efficiency can be easily realized and adjusted within a range of 86–97% and 7–25%, respectively; Acid sensitive drug release dynamics of these NCs are also tunable by using this way. Additionally, the programmed drug release induced by subtle pH variations can be extracellularly self-indicated by detecting the blue AIE changes of the TPE units through fluorescence resonance energy transfer (FRET) effect between DOX and TPE. More importantly, the dynamic pH-triggered DOX release can be easily traced inside the tumor cells by visualizing blue emission changes of the TPE through the FRET effect. In addition, both the size and the shape can affect the endocytic routes of the NCs; The HA coated NCs targeting the tumor cells can effectively inhibit the proliferation of the HeLa cells. This work can provide a new route to acquire the stimuli-responsive self-indicating PMs with the ability to adjust their self-assembly properties and their pH-triggered drug release dynamics, and even to simultaneously visualize the PMs' intracellular fate in a real-time.
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