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:Methylglyoxal from gut microbes boosts radiosensitivity and radioimmunotherapy in rectal cancer by triggering endoplasmic reticulum stress and cGAS-STING activation.
Methylglyoxal from gut microbes boosts radiosensitivity and radioimmunotherapy in rectal cancer by triggering endoplasmic reticulum stress and cGAS-STING activation.
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我们的研究表明,MG 作为 RC 的放射增敏剂和免疫调节剂具有前景。此外,我们提出将 MG 与 iRT 联合在临床实践中具有巨大潜力。
术前放疗(preRT)是直肠癌(RC)新辅助治疗的基本组成部分,但该治疗的应答仍不令人满意。放疗(RT)与免疫治疗(iRT)的联合为癌症治疗提供了一种有前景的方法,尽管其潜在机制尚未完全阐明。肠道微生物群可能影响RT和免疫治疗的应答。因此,我们旨在鉴定肠道微生物群的代谢以逆转放射抵抗并增强iRT的疗效。
前瞻性收集了接受放疗前治疗的局部晚期直肠癌(LARC)患者粪便和血清样本。利用16s rRNA基因测序和超高效液相色谱-质谱联用技术筛选与放射增敏相关的候选肠道微生物组衍生代谢物。通过体外和体内研究评估代谢物的放射增敏效应,包括同基因CT26肿瘤模型和HCT116异种移植肿瘤模型、转录组学和免疫荧光。采用CT26远隔效应模型评估代谢物对iRT的联合效应。
我们最初发现了与肠道微生物群相关的代谢物甲基乙二醛(MG),它能准确预测LARC患者对preRT的反应(AUC值为0.856)。随后,我们在体外和体内观察到,MG通过刺激细胞内活性氧(ROS)并减少肿瘤缺氧,从而增强RC中的RT反应。此外,我们的研究表明,MG通过增加DNA双链断裂,增强RT诱导的环鸟苷酸-AMP合酶-干扰素基因刺激因子通路的激活。同时,它促进由ROS介导的内质网应激产生的免疫原性细胞死亡,从而导致肿瘤免疫微环境中浸润的CD8+ T细胞和NK 细胞增加。最后,我们发现抗程序性细胞死亡蛋白1(anti-PD1)治疗的联合应用在所有受照射肿瘤部位和一半未受照射部位产生了持久的完全缓解。
Preoperative radiation therapy (preRT) is a fundamental aspect of neoadjuvant treatment for rectal cancer (RC), but the response to this treatment remains unsatisfactory. The combination of radiation therapy (RT) and immunotherapy (iRT) presents a promising approach to cancer treatment, though the underlying mechanisms are not yet fully understood. The gut microbiota may influence the response to RT and immunotherapy. Therefore, we aimed to identify the metabolism of gut microbiota to reverse radioresistance and enhance the efficacy of iRT.
Fecal and serum samples were prospectively collected from patients with locally advanced rectal cancer (LARC) who had undergone pre-RT treatment. Candidate gut microbiome-derived metabolites linked with radiosensitization were screened using 16s rRNA gene sequencing and ultrahigh-performance liquid chromatography-mass coupled with mass spectrometry. In vitro and in vivo studies were conducted to assess the radiosensitizing effects of the metabolites including the syngeneic CT26 tumor model and HCT116 xenograft tumor model, transcriptomics and immunofluorescence. The CT26 abscopal effect modeling was employed to evaluate the combined effects of metabolites on iRT.
We initially discovered the gut microbiota-associated metabolite, methylglyoxal (MG), which accurately predicts the response to preRT (Area Under Curve (AUC) value of 0.856) among patients with LARC. Subsequently, we observed that MG amplifies the RT response in RC by stimulating intracellular reactive oxygen species (ROS) and reducing hypoxia in the tumor in vitro and in vivo. Additionally, our study demonstrated that MG amplifies the RT-induced activation of the cyclic guanosine monophosphate AMP synthase-stimulator of interferon genes pathway by elevating DNA double-strand breaks. Moreover, it facilitates immunogenic cell death generated by ROS-mediated endoplasmic reticulum stress, consequently leading to an increase in CD8 + T and natural killer cells infiltrated in the tumor immune microenvironment. Lastly, we discovered that the combination of anti-programmed cell death protein 1 (anti-PD1) therapy produced long-lasting complete responses in all irradiated tumor sites and half of the non-irradiated ones.
Our research indicates that MG shows promise as a radiosensitizer and immunomodulator for RC. Furthermore, we propose that combining MG with iRT has great potential for clinical practice.
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