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:Regulatory T Cells Shape the Differential Impact of Radiation Dose-Fractionation Schedules on Host Innate and Adaptive Antitumor Immune Defenses.
Regulatory T Cells Shape the Differential Impact of Radiation Dose-Fractionation Schedules on Host Innate and Adaptive Antitumor Immune Defenses.
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局部放疗诱导的 Treg 反应受放疗方案和肿瘤类型影响,是 RT 免疫佐剂潜力及其与 T 细胞靶向免疫治疗协同作用能力的关键决定因素。
我们研究了每次分割的辐射剂量(DPF)和总剂量(以生物有效剂量BED表示)如何独立且差异性地影响放射治疗(RT)的免疫调节能力。
在C57BL/6小鼠中,对AT3-OVA乳腺肿瘤和MC38结直肠肿瘤采用合理选择的剂量分割方案进行照射,单独使用或联合免疫调节或免疫耗竭剂。以肿瘤生长作为治疗反应的读数进行监测。通过流式细胞术和小鼠肿瘤的RNA测序,以及对受照射人类癌症转录组数据集的分析,来检查不同放射方案的免疫调节效应。
在AT3-OVA肿瘤中,决定RT能否引发局部抗肿瘤CD8+ T细胞反应并与抗PD-1治疗协同作用的是辐射DPF而非BED。NK 细胞介导的受照射肿瘤控制对辐射BED更为敏感。辐射诱导的调节性T细胞(Treg)反应在小鼠和人类肿瘤中均可检测到,是辐射DPF差异激活适应性免疫以及对RT应答早期阶段NK 细胞活性的主要因素。在受照射肿瘤中靶向抑制Treg反应可挽救并增强RT的局部肿瘤控制,且不论辐射方案如何,均允许产生远隔效应和免疫记忆反应。MC38肿瘤不支持对RT产生放大的Treg反应,且对其免疫佐剂效应高度敏感。
We examined how radiation dose per fraction (DPF) and total dose, as represented by biological effective dose (BED), can independently and differentially affect the immunomodulatory capacity of radiation therapy (RT). METHODS AND MATERIALS: AT3-OVA mammary and MC38 colorectal tumors in C57BL/6 mice were irradiated with rationally selected dose-fractionation schedules, alone or with immune-modulating or -depleting agents. Tumor growth was monitored as a readout of therapeutic response. Flow cytometry and RNA sequencing of mouse tumors and analysis of transcriptomic data sets from irradiated human cancers were used to examine the immunomodulatory effects of the different radiation schedules.
In AT3-OVA tumors, radiation DPF rather than BED determined the ability of RT to evoke local antitumor CD8 + T cell responses and synergize with anti-PD-1 therapy. Natural killer cell-mediated control of irradiated tumors was more sensitive to radiation BED. Radiation-induced regulatory T cell (Treg) responses, which were detected in both mouse and human tumors, were a major factor underlying the differential activation of adaptive immunity by radiation DPF and the activity of natural killer cells during the early phase of response to RT. Targeted inhibition of Treg responses within irradiated tumors rescued and enhanced local tumor control by RT and permitted the generation of abscopal and immunologic memory responses, irrespective of radiation schedule. MC38 tumors did not support the induction of an amplified Treg response to RT and were highly vulnerable to its immunoadjuvant effects.
Local radiation-induced Treg responses are influenced by radiation schedule and tumor type and are a critical determinant of the immunoadjuvant potential of RT and its ability to synergize with T cell-targeted immunotherapy.
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