血小板
癌症研究
前药
血小板活化
肿瘤缺氧
缺氧(环境)
药理学
化学
细胞生物学
医学
生物
免疫学
内科学
放射治疗
氧气
有机化学
作者
Mingkang Zhang,Jing‐Jie Ye,Yu Xia,Ziyang Wang,Chu‐Xin Li,Xiaoshuang Wang,Wuyang Yu,Wen Song,Jun Feng,Xian‐Zheng Zhang
出处
期刊:ACS Nano
[American Chemical Society]
日期:2019-11-12
卷期号:13 (12): 14230-14240
被引量:65
标识
DOI:10.1021/acsnano.9b07330
摘要
Tumorous vasculature plays key roles in sustaining tumor growth. Vascular disruption is accompanied by internal coagulation along with platelet recruitment and the resulting suppression of oxygen supply. We intend to artificially create this physiological process to establish the mutual feedback between vascular disruption and platelet-mimicking biotaxis for the cascade amplification of hypoxia-dependent therapy. To prove this concept, mesoporous silica nanoparticles are co-loaded with a hypoxia-activated prodrug (HAP) and a vessel-disruptive agent and then coated with platelet membranes. Upon entering into tumors, our nanotherapeutic can disrupt local vasculature for tumor inhibition. This platelet membrane-coated nanoplatform shares the hemorrhage-tropic function with parental platelets and can be persistently recruited by the vasculature-disrupted tumors. In this way, the intratumoral vascular disruption and tumor targeting are biologically interdependent and mutually reinforced. Relying on this mutual feedback, tumorous hypoxia was largely promoted by more than 20-fold, accounting for the effective recovery of the HAP's cytotoxicity. Consequently, our bioinspired nanodesign has demonstrated highly specific and effective antitumor potency via the biologically driven cooperation among intratumoral vascular disruption, platelet-mimicking biotaxis, cascade hypoxia amplification, and hypoxia-sensitive chemotherapy. This study offers a paradigm of correlating the therapeutic design with the physiologically occurring events to achieve better therapy performance.
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