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首页> 外文期刊>Materials science & engineering, C. Materials for Biogical applications >Enhanced cellular uptake of near-infrared triggered targeted nanoparticles by cell-penetrating peptide TAT for combined chemo/photothermal/photodynamic therapy
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Enhanced cellular uptake of near-infrared triggered targeted nanoparticles by cell-penetrating peptide TAT for combined chemo/photothermal/photodynamic therapy

机译:通过细胞穿透肽TAT增强近红外触发靶纳米颗粒的细胞摄取,用于组合化疗/光热/光动力治疗

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Recently, the emergence of cell-penetrating peptides (CPPs) like TAT has greatly improved the efficiency of cancer therapy by enhancing cellular uptake of nanomaterials. Here, we designed a near-infrared (NIR) triggered TAT-based targeted nanoplatform (cRGD@TAT-DINPs), which co-delivered anticancer drug doxorubicin (DOX) and biocompatible dye indocyanine green (ICG) to realize combined chemo/photothermal/photodynamic therapy of cancer in vitro. The resulting nanoparticles showed favorable monodispersity and colloidal stability. Impressively, the DOX could be released in a promoted manner once the nanoparticles were exposed to NIR light. Confocal laser scanning microscopy (CLSM) and flow cytometry analysis demonstrated an immensely enhanced cellular accumulation of DOX after the simultaneous introduction of targeted ligand cRGD and CPP TAT. In addition, the obtained nanoparticles exhibited explosive temperature elevation and reactive oxygen species (ROS) generation mediated by encapsulated ICG under NIR irradiation, and in vitro cytotoxicity assay confirmed the cRGD@TAT-DINPs had an increasing cytotoxicity and excellent synergistic inhibition capacity. Thus, TAT-based nanosystems provide a high-efficient drug delivery strategy for optimizing combined therapy efficiency of cancer.
机译:最近,通过增强纳米材料的细胞吸收,诸如TAT的细胞穿透肽(CPP)的出现极大地提高了癌症治疗的效率。在这里,我们设计了近红外(NIR)触发的基于TAT的靶向纳米片(CRGD @ TAT-DINPS),其共同交付抗癌药物多柔比星(DOX)和生物相容性染料吲哚菁绿(ICG),以实现组合的化学/光热/癌症的光动力学治疗体外。所得纳米颗粒显示出良好的单反叠性和胶体稳定性。一旦纳米颗粒暴露于NIR光,DOX可以以促进的方式释放DOX。共聚焦激光扫描显微镜(CLSM)和流式细胞术分析显示在同时引入靶向配体CRGD和CPP TAT后,DOX对DOX的巨大增强的细胞积累。此外,所获得的纳米颗粒表现出通过包封的ICG介导的爆炸性温度升高和反应性氧物质(ROS)产生在NIR辐射下介导,并且体外细胞毒性测定证实CRGD @ TAT-DINP具有增加的细胞毒性和出色的协同抑制能力。因此,基于TAT的纳米系统提供了优化癌症组合疗效的高效药物输送策略。

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