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:Radiation-induced MYB reduction unleashes TIM-3 expression in NK cells to attenuate antitumor immunity in colorectal cancer.
Radiation-induced MYB reduction unleashes TIM-3 expression in NK cells to attenuate antitumor immunity in colorectal cancer.
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放疗激活 NK 细胞,但同时通过抑制 MYB 诱导 TIM-3。阻断 TIM-3 与 RT 协同促进 NK 细胞免疫激活并抑制 CRC 进展。这些发现为 RT 与 TIM-3 免疫治疗联合提供了机制基础。
结直肠癌(CRC)是全球第三大常见癌症,带来转移、复发和治疗耐药等挑战。自然杀伤(NK)细胞对抗肿瘤免疫至关重要,但在肿瘤微环境(TME)中会功能失调。本研究探讨了放疗调控 NK 细胞功能的机制,以支持在 CRC 中联合放疗(RT)与 T 细胞免疫球蛋白结构域和黏蛋白结构域-3(TIM-3)靶向治疗。
我们研究了放射对NK细胞活化、细胞因子分泌及TME调节的影响。采用流式细胞术、免疫组织化学(IHC)和多重免疫荧光(mIF)染色,分析了NK-92细胞、患者来源的外周血单个核细胞(PBMCs)及临床肿瘤标本中TIM-3和MYB的表达。通过TIM-3敲低和MYB过表达,评估它们在NK细胞功能中的调控作用,并通过双荧光素酶报告基因和ChIP实验验证了MYB与TIM-3启动子的直接结合。使用皮下CRC小鼠模型进行体内疗效测试,该模型接受RT、抗TIM-3抗体和/或NK细胞清除治疗,随后对小鼠和人类CRC组织进行IHC和mIF分析。
放射增强了 NK 细胞活性,促进细胞因子分泌并调节 TME。然而,放射矛盾地上调了抑制性受体 TIM-3,同时抑制了 NK 细胞中的 MYB 表达,这在 NK-92 细胞、原代人 NK 细胞和临床肿瘤标本中均得到证实。敲低 TIM-3 增强了放射后的 NK 细胞活化和细胞因子产生,而 MYB 过表达通过直接结合 TIM-3 启动子并抑制其表达,增强了放射诱导的 NK 细胞活化。体内,将 RT 与抗 TIM-3 抗体联合以 NK 细胞依赖性方式协同抑制肿瘤生长,并增强 NK 细胞和 CD8+ T 细胞的瘤内浸润。小鼠和人肿瘤组织的 mIF 证实 RT 后 MYB 降低、TIM-3 升高以及 NK 细胞浸润增强。对受照射人 PBMCs 的流式细胞术进一步重现了原代 NK 细胞中 TIM-3 上调和 MYB 下调。
Colorectal cancer (CRC), the third most common cancer globally, presents challenges like metastasis, recurrence, and therapy resistance. Natural Killer (NK) cells are vital for anti-tumor immunity but become dysfunctional in the tumor microenvironment (TME). This study explored radiation s mechanism regulating NK cell function to support combined radiotherapy (RT) and T cell immunoglobulin domain and mucin domain-3 (TIM-3) targeting in CRC. METHOD: We examined the effects of radiation on NK cell activation, cytokine secretion, and modulation of the TME. The expression of TIM-3 and MYB was analyzed in NK-92 cells, patient-derived peripheral blood mononuclear cells (PBMCs), and clinical tumor specimens using flow cytometry, immunohistochemistry (IHC) and multiplex immunofluorescence (mIF) staining. TIM-3 knockdown and MYB overexpression were performed to assess their regulatory roles in NK cell function, and the direct binding of MYB to the TIM-3 promoter was validated by dual-luciferase reporter and ChIP assays. In vivo efficacy was tested using a subcutaneous CRC mouse model treated with RT, anti-TIM-3 antibody, and/or NK cell depletion, followed by IHC and mIF analysis of mouse and human CRC tissues.
Radiation augmented NK cell activity, enhancing cytokine secretion and modulating the TME. However, radiation paradoxically upregulated the inhibitory receptor TIM-3 while suppressing MYB expression in NK cells, as confirmed in NK-92 cells, primary human NK cells, and clinical tumor specimens. TIM-3 knockdown enhanced NK cell activation and cytokine production following radiation, whereas MYB overexpression potentiated radiation-induced NK cell activation by directly binding to the TIM-3 promoter and suppressing its expression. In vivo, combining RT with anti-TIM-3 antibody synergistically suppressed tumor growth in an NK cell-dependent manner and enhanced intratumoral infiltration of NK and CD8+ T cells. mIF of mouse and human tumor tissues confirmed decreased MYB, increased TIM-3, and enhanced NK cell infiltration following RT. Flow cytometry of irradiated human PBMCs further recapitulated the TIM-3 upregulation and MYB downregulation in primary NK cells.
Irradiation activates NK cells but concurrently induces TIM-3 via MYB suppression. Blocking TIM-3 synergizes with RT to promote NK cell immune activation and inhibit CRC progression. These findings provide a mechanistic basis for combined RT and TIM-3 immunotherapy.
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