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:NK cell-derived GZMB (granzyme B) suppresses glioblastoma radioresistance by blocking SDC1-mediated autophagosome maturation.
NK cell-derived GZMB (granzyme B) suppresses glioblastoma radioresistance by blocking SDC1-mediated autophagosome maturation.
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放射治疗是胶质母细胞瘤(GBM)综合治疗中的基本步骤,而GBM的放射抵抗导致治疗效果受限。自然杀伤(NK)细胞作为免疫治疗的潜在靶点,因其在与放射治疗联合时对癌细胞具有强大的靶向细胞毒性而备受关注,提示NK细胞调控可能是一种放射增敏策略。
本研究表明,NK细胞的一个细胞毒性亚群可被电离辐射(IR)刺激并在GBM肿瘤微环境(TME)中聚集。与NK细胞共培养显著增强GBM细胞对IR的应答,而药物性清除小鼠体内的NK细胞则加剧IR诱导的肿瘤生长延迟。
具体而言,GZMB应是NK细胞分泌的放射增敏效应分子。抑制GZMB活性显著削弱NK介导的GBM放射增敏作用。同时,给予外源性GZMB可改善体外或异种移植模型中的照射剂量-生存反应。在机制上,GZMB通过直接识别并切割SDC1(自噬体成熟的关键调控因子)的第225位缬氨酸和第228位天冬氨酸位点,阻断GBM细胞中自噬体-溶酶体融合。SDC1的不可切割突变可逆转GZMB介导的GBM放射增敏作用。
进一步研究表明,SDC1的切割阻碍了TGM2(一种关键的MAP1LC3/LC3识别因子)在溶酶体表面的定位。临床数据显示,携带SDC1第225位缬氨酸或第228位天冬氨酸突变的GBM患者对放射治疗的反应较低。
在本研究中,我们揭示了NK细胞通过分泌GZMB并阻碍自噬体成熟在肿瘤放疗中的关键作用,并提出了一种将放疗与基于NK的免疫治疗联合用于放疗抵抗性GBM的潜在策略。
缩写:DEGs:差异表达基因;GBM:胶质母细胞瘤;GZMB:颗粒酶B;IL:白细胞介素;IR:电离辐射;IRS:免疫反应性评分;LAMP:溶酶体相关膜蛋白;MAP1LC3/LC3:微管相关蛋白1轻链3;mSDC1:突变型SDC1;NK:自然杀伤;PRF1:穿孔素1;SDC1:多配体蛋白聚糖1;SNAP29:突触体相关蛋白29;SQSTM1:螯合体1;STX17:突触融合蛋白17;TGM2:转谷氨酰胺酶2;TME:肿瘤微环境;TGD:肿瘤生长延迟;VAMP8:囊泡相关膜蛋白8;WT:野生型。
Radiotherapy is a fundamental step in the combined treatment of glioblastoma (GBM), while radioresistance of GBM causes limitation of therapeutic efficacy. Natural killer (NK) cells, a potential target of immunotherapy, have attracted considerable attention due to the robust cancer cell-targeted cytotoxicity in combined treatment with radiotherapy, suggesting NK cell regulation might be a radiosensitization strategy.
Here we show that a cytotoxic subset of NK cells could be stimulated by ionizing radiation (IR) and accumulate in the GBM tumor microenvironment (TME). Co-culturing with NK cells significantly enhances the GBM cell response to IR, and pharmaceutically depleting NK cells in mice elevates IR-induced tumor growth delay. Specifically, GZMB should be the radiosensitization effector secreted by NK cells.
Suppressing GZMB activity remarkably impairs NK-mediated GBM radiosensitization. Meanwhile, administrating exogenous GZMB improves irradiation dose-survival response in vitro or in a xenograft model. Mechanically, GZMB blocks autophagosome-lysosome fusion in GBM cells by directly recognizing and cleaving SDC1, a key regulator of autophagosome maturation, at the valine 225 and aspartate 228 sites. Uncleavable mutation of SDC1 reverses GZMB-mediated radiosensitization in GBM.
Further studies demonstrate that cleavage of SDC1 obstructs the localization of TGM2, a key MAP1LC3/LC3 recognizer, on the lysosome surface. Clinical data reveal GBM patients with an SDC1 valine 225 or aspartate 228 mutation display lower response to radiotherapy. In this study, we disclose the critical role of NK cells in tumor radiotherapy through secreting GZMB and impeding autophagosome maturation, as well as propose a potential strategy combining radiotherapy and NK-based immunotherapy against radioresistant GBM.
Abbreviations : DEGs: differentially expressed genes; GBM: glioblastoma; GZMB: granzyme B; IL: interleukin; IR: ionizing radiation; IRS: immunoreactive score; LAMP: lysosomal associated membrane protein; MAP1LC3/LC3: microtubule associated protein 1 light chain 3; mSDC1: mutant SDC1; NK: natural killer; PRF1: perforin 1; SDC1: syndecan 1; SNAP29: synaptosome associated protein 29; SQSTM1: sequestosome 1; STX17: syntaxin 17; TGM2: transglutaminase 2; TME: tumor microenvironment; TGD: tumor growth delay; VAMP8: vesicle associated membrane protein 8; WT: wild type.
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