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:Antitumor effect of anti-vascular therapy with STING agonist depends on the tumor microenvironment context.
Antitumor effect of anti-vascular therapy with STING agonist depends on the tumor microenvironment context.
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该研究提供了临床前证据,表明 TME 对所用疗法的结果有很大影响,包括免疫细胞贡献和 ICI 反应性。我们指出,在抗肿瘤治疗前需要进行仔细的 TME 筛查,以获得满意的结果。
靶向肿瘤血管是抗击癌症的有效武器;然而,替代通路的激活会重建被破坏的血管,导致肿瘤快速再生长。利用宿主免疫细胞引发并维持强效抗肿瘤反应的免疫疗法已成为癌症治疗最有前景的工具之一,但许多治疗因产生耐药机制而失败。因此,我们的目的是研究免疫疗法与抗血管治疗的联合是否能在免疫原性差、难以治疗的黑色素瘤和三阴性乳腺肿瘤模型中取得成功。
我们的研究是在B16-F10黑色素瘤和4T1乳腺肿瘤小鼠模型上进行的。小鼠接受干扰素基因刺激因子(STING)通路激动剂(cGAMP)和血管破坏剂考布他汀A4磷酸盐(CA4P)治疗。监测肿瘤生长。使用多重免疫荧光和流式细胞术全面研究肿瘤微环境(TME)。我们还检查了这种设计的治疗是否使所研究的肿瘤模型对免疫检查点抑制剂(抗PD-1)敏感。
由于4T1肿瘤中STING蛋白水平低,单独使用STING激动剂cGAMP不足以有效抑制肿瘤生长。然而,当额外联合抗血管生成药物时,获得了显著的治疗效果。在该模型中,所获得的效果与TME极化及先天免疫应答的刺激相关,尤其是NK细胞的激活。联合治疗未能激活CD8+ T细胞。由于缺乏PD-1上调,当额外联合抗PD-1抑制剂时,未观察到治疗效果改善。在STING蛋白高度丰富的B16-F10肿瘤中,cGAMP单药治疗足以诱导强效抗肿瘤应答。在该模型中,治疗效果归因于活化的NK细胞浸润TME。cGAMP还引起CD8+PD-1+ T细胞浸润TME;因此,观察到使用PD-1抑制剂的额外获益。
Our study was performed on B16-F10 melanoma and 4T1 breast tumor murine models. Mice were treated with the stimulator of interferon genes (STING) pathway agonist (cGAMP) and vascular disrupting agent combretastatin A4 phosphate (CA4P). Tumor growth was monitored. The tumor microenvironment (TME) was comprehensively investigated using multiplex immunofluorescence and flow cytometry. We also examined if such designed therapy sensitizes investigated tumor models to an immune checkpoint inhibitor (anti-PD-1).
The use of STING agonist cGAMP as monotherapy was insufficient to effectively inhibit tumor growth due to low levels of STING protein in 4T1 tumors. However, when additionally combined with an anti-vascular agent, a significant therapeutic effect was obtained. In this model, the obtained effect was related to the TME polarization and the stimulation of the innate immune response, especially activation of NK cells. Combination therapy was unable to activate CD8 + T cells. Due to the lack of PD-1 upregulation, no improved therapeutic effect was observed when additionally combined with the anti-PD-1 inhibitor. In B16-F10 tumors, highly abundant in STING protein, cGAMP as monotherapy was sufficient to induce potent antitumor response. In this model, the therapeutic effect was due to the infiltration of the TME with activated NK cells. cGAMP also caused the infiltration of CD8 + PD-1 + T cells into the TME; hence, additional benefits of using the PD-1 inhibitor were observed.
The study provides preclinical evidence for a great influence of the TME on the outcome of applied therapy, including immune cell contribution and ICI responsiveness. We pointed the need of careful TME screening prior to antitumor treatments to achieve satisfactory results.
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