Ab'/> Harnessing the cross-talk between tumor cells and tumor-associated macrophages with a nano-drug for modulation of glioblastoma immune microenvironment
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Harnessing the cross-talk between tumor cells and tumor-associated macrophages with a nano-drug for modulation of glioblastoma immune microenvironment

机译:利用肿瘤细胞和肿瘤相关巨噬细胞与纳米药物之间的串扰,用于调节胶质母细胞瘤免疫微环境

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摘要

AbstractGlioblastoma (GBM) is the most frequent and malignant brain tumor with a high mortality rate. The presence of a large population of macrophages (MΦ) in the tumor microenvironment is a prominent feature of GBM and these so-called tumor-associated MΦ (TAM) closely interact with the GBM cells to promote the survival, progression and therapy resistance of the GBM. Various therapeutic strategies have been devised either targeting the GBM cells or the TAM but few have addressed the cross-talks between the two cell populations. The present study was carried out to explore the possibility of exploiting the cross-talks between the GBM cells (GC) and TAM for modulation of the GBM microenvironment through using Nano-DOX, a drug composite based on nanodiamonds bearing doxorubicin. In the in vitro work on human cell models, Nano-DOX-loaded TAM were first shown to be viable and able to infiltrate three-dimensional GC spheroids and release cargo drug therein. GC were then demonstrated to encourage Nano-DOX-loaded TAM to unload Nano-DOX back into GC which consequently emitted damage-associated molecular patterns (DAMPs) that are powerful immunostimulatory agents as well as indicators of cell damage. Nano-DOX was next proven to be a more potent inducer of GC DAMPs emission than doxorubicin. As a result, Nano-DOX-damaged GC exhibited an enhanced ability to attract both TAM and Nano-DOX-loaded TAM. Most remarkably, Nano-DOX-damaged GC reprogrammed the TAM from a pro-GBM phenotype to an anti-GBM phenotype that suppressed GC growth. Finally, the in vivo relevance of the in vitro findings was tested in animal study. Mice bearing orthotopic human GBM xenografts were intravenously injected
机译:<![cdata [ 抽象 GlioBlastoma(GBM)是最常见和恶性脑肿瘤,具有高死亡率。肿瘤微环境中大量巨噬细胞(Mφ)的存在是GBM的突出特征,并且这些所谓的肿瘤相关的Mφ(TAM)与GBM细胞密切相关,以促进生存,进展和治疗抵抗力GBM。已经设计了各种治疗策略,要么针对GBM细胞或坦坦,但很少有两个细胞群之间的交叉谈判。进行本研究以探讨通过使用基于纳米金属蛋白的纳米胺的药物复合材料来利用GBM细胞(GC)和TAM之间的串扰的可能性。在对人细胞模型的体外工作中,首先显示纳米DOX加载的TAM可行且能够渗透三维GC球状体并在其中释放货物药物。然后证明了GC以促使纳米DOX加载的TAM卸载纳米DOX回到GC,从而产生损伤相关的分子模式(潮湿),其是强大的免疫刺激剂以及细胞损伤的指标。接下来被证明是纳米DOX,这是一种比多柔比星的GC潮湿排放的更有效的诱导剂。结果,纳米Dox损坏的GC表现出吸引TAM和纳米DOX加载的TAM的能力。最显着地,纳米Dox损坏的GC将TAM从Pro-GBM表型重新编程为抑制GC生长的抗GBM表型。最后,在动物研究中测试了体外发现的体内相关性。轴承原位人GBM异种移植物的小鼠静脉注射

著录项

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  • 作者单位

    Department of Pharmacology School of Basic Medicine Wuhan University;

    Center for Lab Teaching School of Basic Medicine Wuhan University;

    Department of Pharmacology School of Basic Medicine Wuhan University;

    Department of Pharmacology School of Basic Medicine Wuhan University;

    Department of Pharmacology School of Basic Medicine Wuhan University;

    Institute of Ophthalmological Research Department of Ophthalmology Renmin Hospital of Wuhan University;

    Department of Pharmacology School of Basic Medicine Wuhan University;

    Department of Pharmacology School of Basic Medicine Wuhan University;

    Department of Pharmacology School of Basic Medicine Wuhan University;

    Department of Pharmacology School of Basic Medicine Wuhan University;

    Division of Nephrology Tongji Hospital Tongji Medical College Huazhong University of Science and Technology;

    Graduate School of Human and Environmental Studies Kyoto University;

    School of Radiation Medicine and Protection (SRMP) School of Radiation and Multidisciplinary Sciences (RAD-X) Medical College Soochow University;

    Department of Pharmacology School of Basic Medicine Wuhan University;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 药学;
  • 关键词

    Cross-talk; Cancer cell; Cancer-associated macrophage; Glioblastoma; Nano-drug;

    机译:跨谈;癌细胞;癌症相关的巨噬细胞;胶质母细胞瘤;纳米药物;

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