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 CXCL10/CXCR3 axis is essential for sustaining immunological dormancy in triple-negative breast cancer.
The CXCL10/CXCR3 axis is essential for sustaining immunological dormancy in triple-negative breast cancer.
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免疫监视在控制肿瘤发生、休眠和进展中发挥关键作用,包括在乳腺癌中。尽管其具有潜在的临床相关性,但调控休眠启动、维持和逃逸的机制以及所涉及的分子介质仍知之甚少。
在此,我们确定干扰素诱导趋化因子CXCL10及其受体CXCR3是三阴性乳腺癌(TNBC)免疫休眠的关键调控因子。通过转录组分析,我们在两种不同的原位同基因乳腺癌休眠模型(D2.0R和4T1-MR20)中观察到休眠细胞中Cxcl10的高表达。在免疫健全小鼠中,对休眠细胞中Cxcl10的基因沉默或在体内对CXCR3的药理学阻断导致肿瘤早期发生和快速生长。相反,休眠细胞在免疫缺陷小鼠中可有效形成肿瘤,且与Cxcl10状态无关,表明CXCL10/CXCR3轴介导的休眠需要功能性免疫系统。
进一步分析证实,Cxcl10沉默改变了局部免疫微环境,减少CD4+和CD8+T细胞浸润,同时增加粒细胞性髓源性抑制细胞和NK 细胞的存在。
此外,Cxcl10沉默显著增加了播散至肺部的肿瘤细胞负荷。利用这些发现,我们鉴定出一种CXCL10介导的休眠特征,可预测TNBC患者总生存期的改善。
我们的研究结果发现了一种调节乳腺癌休眠的新机制,具有两个重要的临床意义:CXCL10/CXCR3轴作为改善TNBC患者生存的潜在治疗靶点,以及CXCL10依赖性休眠特征作为识别这些患者的工具。
Immune surveillance plays a pivotal role in controlling tumor emergence, dormancy and progression, including in breast cancer. Despite its potential clinical relevance, the mechanisms governing dormancy initiation, maintenance and escape, as well as the molecular mediators involved, remain poorly understood.
Here, we identify the interferon-inducible chemokine CXCL10 and its receptor CXCR3 as key regulators of immunological dormancy in triple-negative breast cancer (TNBC). By transcriptomic profiling, we observed high expression of Cxcl10 in dormant cells in two different orthotopic, syngeneic models of breast cancer dormancy (D2. 0R and 4T1-MR20).
Genetic silencing of Cxcl10 in dormant cells or pharmacological blockade of CXCR3 in vivo led to early tumor onset and rapid growth in immunocompetent mice. In contrast, dormant cells effectively formed tumors in immune-deficient mice independently of Cxcl10 status, demonstrating that the CXCL10/CXCR3 axis-mediated dormancy requires a functional immune system.
Further analysis confirmed that Cxcl10 silencing altered the local immune microenvironment, reducing CD4 + and CD8 + T cell infiltration while increasing the presence of granulocytic Myeloid Derived Suppressor Cells and Natural Killer cells.
Moreover, Cxcl10 silencing significantly increased the burden of tumor cells disseminated to the lung. Leveraging these findings, we identified a CXCL10-mediated dormancy signature that predicts improved overall survival in TNBC patients.
Our findings have identified a new mechanism modulating breast cancer dormancy with two important clinical implications: the CXCL10/CXCR3 axis as a potential therapeutic target for improving survival of patients with TNBC, and the CXCL10-dependent dormancy signature as a tool for identifying these patients.
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