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:The microbial metabolite desaminotyrosine enhances T-cell priming and cancer immunotherapy with immune checkpoint inhibitors.
The microbial metabolite desaminotyrosine enhances T-cell priming and cancer immunotherapy with immune checkpoint inhibitors.
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我们引入了一种调节 IFN-I 的细菌来源代谢物用于治疗,以克服对 ICI 的耐药性。这种方法尤其对于有广谱抗生素使用史及相关肠道微生物多样性丧失的患者来说,是一种有前景的策略。
个体对免疫检查点抑制剂(ICI)反应的差异仍是癌症治疗中的主要挑战。肠道微生物组的组成与ICI的不同结局相关,但其潜在的分子机制仍不清楚,治疗性调控也具有挑战性。
我们建立了一种体内模型,用I型干扰素(IFN-I)调节性、细菌来源的代谢物脱氨基酪氨酸(DAT)治疗C57Bl/6j小鼠,以改善ICI治疗。使用广谱抗生素模拟肠道微生物失调及相关的ICI耐药。我们利用遗传小鼠模型来探讨宿主IFN-I在DAT调节的抗肿瘤免疫中的作用。使用16S-rRNA测序分析评估肠道微生物群的变化。
我们发现,给小鼠口服补充微生物代谢物 DAT 可延缓肿瘤生长,并促进抗 CTLA-4 或抗 PD-1 的 ICI 免疫治疗。DAT 增强的抗肿瘤免疫与肿瘤微环境中更多活化的 T 细胞和NK 细胞相关,并依赖于宿主 IFN-I 信号传导。与此一致,DAT 在接种含 IFN-I 诱导佐剂的疫苗后,能有效增强抗原特异性 T 细胞的扩增。在小鼠中补充 DAT 可补偿广谱抗生素诱导的菌群失调对抗 CTLA-4 介导抗肿瘤免疫的负面影响。口服给予 DAT 改变了小鼠的肠道微生物组成,使与 ICI 免疫治疗有益应答相关的细菌分类群丰度增加。
Inter-individual differences in response to immune checkpoint inhibitors (ICI) remain a major challenge in cancer treatment. The composition of the gut microbiome has been associated with differential ICI outcome, but the underlying molecular mechanisms remain unclear, and therapeutic modulation challenging.
We established an in vivo model to treat C57Bl/6j mice with the type-I interferon (IFN-I)-modulating, bacterial-derived metabolite desaminotyrosine (DAT) to improve ICI therapy. Broad spectrum antibiotics were used to mimic gut microbial dysbiosis and associated ICI resistance. We utilized genetic mouse models to address the role of host IFN-I in DAT-modulated antitumour immunity. Changes in gut microbiota were assessed using 16S-rRNA sequencing analyses.
We found that oral supplementation of mice with the microbial metabolite DAT delays tumour growth and promotes ICI immunotherapy with anti-CTLA-4 or anti-PD-1. DAT-enhanced antitumour immunity was associated with more activated T cells and natural killer cells in the tumour microenvironment and was dependent on host IFN-I signalling. Consistent with this, DAT potently enhanced expansion of antigen-specific T cells following vaccination with an IFN-I-inducing adjuvant. DAT supplementation in mice compensated for the negative effects of broad-spectrum antibiotic-induced dysbiosis on anti-CTLA-4-mediated antitumour immunity. Oral administration of DAT altered the gut microbial composition in mice with increased abundance of bacterial taxa that are associated with beneficial response to ICI immunotherapy. INTERPRETATION: We introduce the therapeutic use of an IFN-I-modulating bacterial-derived metabolite to overcome resistance to ICI. This approach is a promising strategy particularly for patients with a history of broad-spectrum antibiotic use and associated loss of gut microbial diversity. FUNDING: Melanoma Research Alliance, Deutsche Forschungsgemeinschaft, German Cancer Aid, Wilhelm Sander Foundation, Novartis Foundation.
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