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.
英文原题:Phenoscaping Reveals Multimodal γδ T-cell Cytotoxicity as a Strategy to Overcome Cancer Cell-Mediated Immunomodulation.
Phenoscaping Reveals Multimodal γδ T-cell Cytotoxicity as a Strategy to Overcome Cancer Cell-Mediated Immunomodulation.
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γδ T细胞可通过非抗体依赖性细胞毒性(AIC)和抗体依赖性细胞毒性(ADCC)杀伤癌细胞。更好地理解这些细胞毒性机制如何受不同癌细胞和不同T细胞供体影响,有助于确定改进的免疫治疗策略。为检测T细胞供体间异质性、癌细胞肿瘤间异质性(ITH)和多模式γδ T细胞杀伤之间的组合相互作用,我们对超过1,000个γδ T细胞和结直肠癌患者来源类器官培养物进行了系统性单细胞表型图谱分析。对翻译后修饰(PTM)信号、细胞周期、凋亡和T细胞免疫表型的单细胞分析显示,未修饰的γδ T细胞抗肿瘤活性有限,而IL15Rα-IL15融合蛋白[稳定化IL15(stIL15)]工程化γδ T细胞无需外源性细胞因子支持即可通过AIC杀伤患者来源类器官。然而,当stIL15 γδ T细胞仅通过AIC杀伤时,癌细胞以ITH特异性方式反向重编程γδ T细胞PTM信号网络,从而抑制抗癌细胞毒性。stIL15 γδ T细胞还可通过参与靶向B7-H3的ADCC来克服这种癌细胞免疫调节,且不依赖于B7-H3检查点活性。AIC和ADCC联合可恢复γδ T细胞PTM信号通量,并使γδ T细胞能够杀伤化疗耐药后复苏的结肠癌干细胞。总之,这些结果表明,多模式γδ T细胞细胞毒性机制可克服ITH特异性免疫调节,从而杀伤化疗耐药癌细胞。意义:对1000多个γδ T细胞和患者来源类器官培养物进行的单细胞表型分析显示,癌细胞会抑制抗癌γδ T细胞的细胞毒性,但γδ T细胞可以利用多模式杀伤来克服免疫调节。
UNLABELLED: γδ T cells can kill cancer cells via antibody-independent cytotoxicity (AIC) and antibody-dependent cellular cytotoxicity (ADCC). A better understanding of how these cytotoxic mechanisms are affected by different cancer cells and different T-cell donors could help identify improved immunotherapeutic strategies. To test the combinatorial interactions among T cell interdonor heterogeneity, cancer cell intertumor heterogeneity (ITH), and multimodal γδ T-cell killing, we performed a systematic single-cell phenoscaping analysis of more than 1,000 γδ T-cell and colorectal cancer patient-derived organoid cultures.
Single-cell analysis of posttranslational modification (PTM) signaling, cell cycle, apoptosis, and T-cell immunophenotypes revealed that whereas unmodified γδ T cells have limited antitumor activity, IL15Rα-IL15 fusion protein [stabilized IL15 (stIL15)]-engineered γδ T cells can kill patient-derived organoids via AIC without exogenous cytokine support.
However, when stIL15 γδ T cells only killed via AIC, cancer cells reciprocally rewired γδ T-cell PTM signal networks in an ITH-specific manner to suppress anticancer cytotoxicity. stIL15 γδ T cells could overcome this cancer cell immunomodulation by also engaging B7-H3-targeted ADCC independent of B7-H3 checkpoint activity. Combined AIC and ADCC rescued γδ T-cell PTM signaling flux and enabled γδ T cells to kill chemorefactory revival colon cancer stem cells.
Together, these results demonstrate that multimodal γδ T-cell cytoxicity mechanisms can overcome ITH-specific immunomodulation to kill chemorefractory cancer cells. SIGNIFICANCE: Single-cell phenoscaping of more than 1,000 γδ T-cell and patient-derived organoid cultures shows that cancer cells suppress anticancer γδ T-cell cytotoxicity but γδ T cells can use multimodal killing to overcome immunomodulation.
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