RNF43 p.G659fs 通过 PI3K/AKT/mTOR 信号通路和 HLA-E 上调导致 MSI-high 结直肠癌中 NK 细胞功能障碍
RNF43 p.G659fs leads to natural killer cell dysfunction in MSI-high colorectal cancer through PI3K/AKT/mTOR signaling and HLA-E up-regulation.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Biomimetic polymeric nanoreactors with photooxidation-initiated therapies and reinvigoration of antigen-dependent and antigen-free immunity.
Biomimetic polymeric nanoreactors with photooxidation-initiated therapies and reinvigoration of antigen-dependent and antigen-free immunity.
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免疫细胞介导的抗癌手段通常面临免疫细胞耗竭以及在实体瘤中疗效有限的问题。在此,我们开发了携氧仿生纳米反应器(BNR2(O₂)),其结合光氧化驱动疗法以及抗原依赖性和非抗原依赖性免疫再激活,用于对抗异种移植肿瘤。BNR2(O₂)由聚合物纳米反应器组成,并用癌细胞膜进行伪装,可高效靶向同型肿瘤。与过氧化氢和谷胱甘肽孵育相比,它持续释放O₂以增强细胞内活性氧(ROS),从而氧化二硒键,可控释放硒酸和抗叶酸药物Pemetrexed。富O₂微环境使Pemetrexed增敏,并阻断程序性细胞死亡配体1(PD-L1),以逆转T细胞免疫抑制。ROS和Pemetrexed上调促凋亡蛋白并抑制叶酸相关酶,从而引起显著的细胞凋亡和免疫原性细胞死亡,刺激树突状细胞成熟,改善细胞因子分泌,扩大抗原依赖性T细胞免疫。
此外,通过调节硒酸的释放,可阻断肿瘤细胞的检查点受体人类白细胞抗原E,从而重新激活非抗原依赖性NK 细胞免疫。这项工作通过连接仿生纳米反应器与多种免疫细胞的调控,提供了一种先进的抗肿瘤策略。
Immune cell-mediated anticancer modalities usually suffer from immune cell exhaustion and limited efficacy in solid tumors.
Herein, the oxygen-carrying biomimetic nanoreactors (BNR2(O 2 )) have been developed with photooxidation-driven therapies and antigen-dependent/antigen-free immune reinvigoration against xenograft tumors. The BNR2(O 2 ) composes polymeric nanoreactors camouflaged with cancer cell membranes can efficiently target homotypic tumors. It continuously releases O 2 to boost intracellular reactive oxygen species (ROS) to oxide diselenide bonds, which controllably releases seleninic acids and anti-folate Pemetrexed compared to hydrogen peroxide and glutathione incubation.
The O 2 -rich microenvironment sensitizes Pemetrexed and blocks programmed cell-death ligand 1 (PD-L1) to reverse T cell immunosuppression. The ROS and Pemetrexed upregulate pro-apoptosis proteins and inhibit folate-related enzymes, which cause significant apoptosis and immunogenic cell death to stimulate dendritic cell maturation for improved secretion of cytokines, expanding antigen-dependent T cell immunity.
Furthermore, by regulating the release of seleninic acids, the checkpoint receptor human leukocyte antigen E of tumor cells can be blocked to reinvigorate antigen-free natural killer cell immunity. This work offers an advanced antitumor strategy by bridging biomimetic nanoreactors and modulation of multiple immune cells.
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