内化
生物物理学
Zeta电位
胶束
材料科学
体内
粒径
表面电荷
纳米颗粒
收缩(语法)
木筏
渗透(战争)
化学
纳米技术
细胞
聚合物
生物化学
有机化学
共聚物
水溶液
生物技术
物理化学
复合材料
医学
工程类
内科学
运筹学
生物
作者
Mengcheng Ma,Yafang Chen,Mingda Zhao,Junhui Sui,Zhihao Guo,Yuedi Yang,Zhiyi Xu,Yong Sun,Yujiang Fan,Xingdong Zhang
出处
期刊:Biomaterials
[Elsevier]
日期:2021-03-01
卷期号:271: 120741-120741
被引量:16
标识
DOI:10.1016/j.biomaterials.2021.120741
摘要
Integrating these features of acid-activated positively charged surface and size contraction into single nanoparticle would be an effective strategy for enhancing cellular uptake, intratumoral penetration and accumulation. Here, hierarchical responsive micelle (HVDMs) was developed via RAFT reaction as multifunctional polymer-drug conjugate for maximizing penetration and therapeutic effect against MCF-7 tumor by combining positively charged surface with size contraction: surface zeta-potential reversal (−2 to +12 mV) by protonation of PHEME and size contraction (~81–~41 nm) by simultaneous hydrophobic/hydrophilic conversion (pH ≈ 6.7); the disintegration of hydrazone bond between hydrophobic PVB and DOX triggered drug release (pH ≈ 5.0). The in vitro structural stabilization, cellular uptake and anti-proliferative efficiency were significantly higher than other control groups (CVDMs and HSDMs) at pH 6.7. The markedly increased penetration depth, cellular internalization and anti-tumor efficiency were confirmed in 3D MCSs spheroids at pH 6.7, and the ex vivo DOX fluorescence images further verified obvious penetration and accumulation in internal region of solid tumor. The antitumor effect in vivo demonstrated that HVDMs accelerated tumor atrophy, induced intratumoral cells apoptosis and alleviated system toxicity.
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