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首页> 外文期刊>International Journal of Nanomedicine >Combinational phototherapy and hypoxia-activated chemotherapy favoring antitumor immune responses
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Combinational phototherapy and hypoxia-activated chemotherapy favoring antitumor immune responses

机译:联合光疗和低氧激活化疗有利于抗肿瘤免疫反应

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Background: Tumor metastasis is responsible for most cancer death worldwide, which lacks curative treatment. Purpose: The objective of this study was to eliminate tumor and control the development of tumor metastasis. Methods: Herein, we demonstrated a smart nano-enabled platform, in which?2-[2-[2-chloro-3-[(1,3-dihydro-3,3-dimethyl-1-propyl-2h-indol-2-ylidene)ethylidene]-1-cyclohexen-1-yl]ethenyl]-3,3-dimethyl-1-propylindolium iodide (IR780) and tirapazamine (TPZ) were co-loaded in poly(?-caprolactone)-poly(ethylene glycol) (PEG-PCL) to form versatile nanoparticles (PEG-PCL-IR780-TPZ NPs). Results: The intelligence of the system was reflected in the triggered and controlled engineering. Specially, PEG-PCL not only prolonged the circulation time of IR780 and TPZ but also promoted tumor accumulation of nanodrugs through enhanced permeability and retention (EPR) effect. Moreover, reactive oxygen species (ROS) generated by IR780 armed by an 808 nm laser irradiation evoked a cargo release. Meanwhile, IR780, as a mitochondria-targeting phototherapy agent exacerbated tumor hypoxic microenvironment and activated TPZ for accomplishing hypoxia-activated chemotherapy. Most significantly, IR780 was capable of triggering immunogenic cell death (ICD) during the synergic treatment. ICD biomarkers as a “danger signal” accelerated dendritic cells (DCs) maturation, and subsequently activated toxic T lymphocytes. Conclusion: Eventually, antitumor immune responses stimulated by combinational phototherapy and hypoxia-activated chemotherapy revolutionized the current landscape of cancer treatment, strikingly inhibiting tumor metastasis and providing a promising prospect in the clinical application.
机译:背景:肿瘤转移是导致全球大多数癌症死亡的原因,缺乏治疗。目的:本研究的目的是消除肿瘤并控制肿瘤转移的发展。方法:在本文中,我们演示了一个智能的纳米平台,其中?2- [2- [2-氯-3-[(1,3-二氢-3,3-二甲基-1-丙基-2h-吲哚-将2-亚乙基]亚乙基] -1-环己烯-1-基]乙烯基] -3,3-二甲基-1-丙基碘化碘鎓(IR780)和替拉帕明(TPZ)共同装入聚(ε-己内酯)乙二醇(PEG-PCL)形成多功能纳米颗粒(PEG-PCL-IR780-TPZ NP)。结果:系统的智能反映在触发和控制的工程中。特别地,PEG-PCL不仅延长了IR780和TPZ的循环时间,而且还通过增强渗透性和保留(EPR)效应促进了纳米药物在肿瘤中的蓄积。此外,由IR780产生的活性氧(ROS)受到808 nm激光辐射的激发引发了货物释放。同时,IR780作为靶向线粒体的光疗剂,加重了肿瘤的低氧微环境,并激活了TPZ,以完成缺氧激活的化学疗法。最重要的是,IR780能够在协同治疗期间触发免疫原性细胞死亡(ICD)。 ICD生物标记物作为“危险信号”加速树突状细胞(DC)的成熟,并随后激活了毒性T淋巴细胞。结论:最终,光疗和缺氧激活的化学疗法相结合刺激的抗肿瘤免疫反应彻底改变了目前的癌症治疗方法,显着抑制了肿瘤转移,为临床应用提供了广阔的前景。

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