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:DPP inhibition alters the CXCR3 axis and enhances NK and CD8+ T cell infiltration to improve anti-PD1 efficacy in murine models of pancreatic ductal adenocarcinoma.
DPP inhibition alters the CXCR3 axis and enhances NK and CD8+ T cell infiltration to improve anti-PD1 efficacy in murine models of pancreatic ductal adenocarcinoma.
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这些发现表明,使用 BXCL701 抑制 DPP 是一种药理学策略,可增加肿瘤微环境免疫细胞含量,从而提高抗 PD1 在 PDAC 中的疗效,提示 BXCL701 能够增强免疫疗法在“冷”肿瘤类型中的疗效。这些发现还强调了 NK 细胞与 T 细胞一起在调控 PDAC 肿瘤生长中的潜在重要性。
胰腺导管腺癌(PDAC)预计到2030年将成为美国癌症死亡的第二大原因。免疫检查点抑制剂无法控制大多数PDAC肿瘤,因为PDAC具有广泛的免疫抑制微环境和较差的免疫浸润,这种表型也见于其他非炎症性(即“冷”)肿瘤。寻找增强PDAC免疫治疗疗效的新方法至关重要。二肽基肽酶(DPP)抑制可增强其他癌症类型的免疫治疗疗效;然而,DPP抑制对PDAC肿瘤的影响仍未被探索。
我们使用mT3-2D和Pan02皮下同系小鼠模型在C57BL/6小鼠中检查了口服小分子DPP抑制剂(BXCL701)对PDAC肿瘤生长的影响。我们利用RNAseq、免疫组织化学、细胞因子评估和流式细胞术探讨了DPP抑制对肿瘤免疫景观的影响。随后,我们测试了BXCL701是否增强抗程序性细胞死亡蛋白1(anti-PD1)的疗效,并进行了免疫细胞耗竭和再挑战研究,以探讨细胞毒性免疫细胞与联合治疗疗效的相关性。
在两种PDAC小鼠模型中,DPP抑制增强了NK和T细胞免疫浸润并减少了肿瘤生长。DPP抑制还增强了anti-PD1的疗效。双重anti-PD1和BXCL701治疗的疗效依赖于CD8+ T细胞和NK细胞。接受该联合治疗的小鼠产生了抗肿瘤免疫记忆,在再次暴露后清除了部分肿瘤。最后,我们利用The Cancer Genome Atlas(TCGA)证明,在人PDAC肿瘤中NK细胞含量增加,而非T细胞含量增加,与更长的总生存期相关。我们提出,广泛的DPP抑制通过两种机制增强抗肿瘤免疫应答:(1)DPP4抑制增加肿瘤中CXCL9/10的含量,从而招募CXCR3+ NK和T细胞;(2)DPP8/9抑制激活炎症小体,导致促炎细胞因子释放和Th1应答,进一步增强CXCL9/10-CXCR3轴。
Pancreatic ductal adenocarcinoma (PDAC) is projected to be the second leading cause of cancer death in the USA by 2030. Immune checkpoint inhibitors fail to control most PDAC tumors because of PDAC's extensive immunosuppressive microenvironment and poor immune infiltration, a phenotype also seen in other non-inflamed (ie, 'cold') tumors. Identifying novel ways to enhance immunotherapy efficacy in PDAC is critical. Dipeptidyl peptidase (DPP) inhibition can enhance immunotherapy efficacy in other cancer types; however, the impact of DPP inhibition on PDAC tumors remains unexplored.
We examined the effects of an oral small molecule DPP inhibitor (BXCL701) on PDAC tumor growth using mT3-2D and Pan02 subcutaneous syngeneic murine models in C57BL/6 mice. We explored the effects of DPP inhibition on the tumor immune landscape using RNAseq, immunohistochemistry, cytokine evaluation and flow cytometry. We then tested if BXCL701 enhanced anti-programmed cell death protein 1 (anti-PD1) efficacy and performed immune cell depletion and rechallenged studies to explore the relevance of cytotoxic immune cells to combination treatment efficacy.
In both murine models of PDAC, DPP inhibition enhanced NK and T cell immune infiltration and reduced tumor growth. DPP inhibition also enhanced the efficacy of anti-PD1. The efficacy of dual anti-PD1 and BXCL701 therapy was dependent on both CD8+ T cells and NK cells. Mice treated with this combination therapy developed antitumor immune memory that cleared some tumors after re-exposure. Lastly, we used The Cancer Genome Atlas (TCGA) to demonstrate that increased NK cell content, but not T cell content, in human PDAC tumors is correlated with longer overall survival. We propose that broad DPP inhibition enhances antitumor immune response via two mechanisms: (1) DPP4 inhibition increases tumor content of CXCL9/10, which recruits CXCR3+ NK and T cells, and (2) DPP8/9 inhibition activates the inflammasome, resulting in proinflammatory cytokine release and Th1 response, further enhancing the CXCL9/10-CXCR3 axis.
These findings show that DPP inhibition with BXCL701 represents a pharmacologic strategy to increase the tumor microenvironment immune cell content to improve anti-PD1 efficacy in PDAC, suggesting BXCL701 can enhance immunotherapy efficacy in 'cold' tumor types. These findings also highlight the potential importance of NK cells along with T cells in regulating PDAC tumor growth.
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