光热治疗
纳米技术
纳米载体
材料科学
超短脉冲
纳米医学
限制
渗透(战争)
药物输送
纳米颗粒
生物物理学
激光器
工程类
物理
光学
生物
机械工程
运筹学
作者
Ao Feng,Xie Cheng,Xing Huang,Yang Liu,Zhaoxia He,Juan Zhao,Huiyan Duan,Zhiqing Shi,Jintang Guo,Shuai Wang,Xibo Yan
出处
期刊:Small
[Wiley]
日期:2023-02-25
卷期号:: 2206426-2206426
标识
DOI:10.1002/smll.202206426
摘要
Nanomedicines confront various complicated physiological barriers limiting the accumulation and deep penetration in the tumor microenvironment, which seriously restricts the efficacy of antitumor therapy. Self-propelled nanocarriers assembled with kinetic engines can translate external energy into orientated motion for tumor penetration. However, achieving a stable ultrafast permeability at the tumor site remains challenging. Here, sub-200 nm photoactivated completely organic nanorockets (NRs), with asymmetric geometry conveniently assembled from photothermal semiconducting polymer payload and thermo-driven macromolecular propulsion through a straightforward nanoprecipitation process, are presented. The artificial NRs can be remotely manipulated by 808 nm near-infrared light to trigger the photothermal conversion and Curtius rearrangement reaction within the particles for robustly pushing nitrogen out into the solution. Such a two-stage light-to-heat-to-chemical energy transition effectively powers the NRs for an ultrafast (≈300 µm s-1 ) and chemical medium-independent self-propulsion in the liquid media. That endows the NRs with high permeability against physiological barriers in the tumor microenvironment to directionally deliver therapeutic agents to target lesions for elevating tumor accumulation, deep penetration, and cellular uptake, resulting in a significant enhancement of antitumor efficacy. This work will inspire the design of advanced kinetic systems for powering intelligent nanomachines in biomedical applications.
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