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:Inverse correlation between TP53 gene status and PD-L1 protein levels in a melanoma cell model depends on an IRF1/SOX10 regulatory axis.
Inverse correlation between TP53 gene status and PD-L1 protein levels in a melanoma cell model depends on an IRF1/SOX10 regulatory axis.
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我们表明,在等基因黑色素瘤细胞模型中,p53 缺失通过 IRF1 和 SOX10 影响 PD-L1 水平,并且 p53 缺失影响 NK 细胞对肿瘤细胞的细胞毒性。此外,通过 MDM2 抑制激活 p53 对 IRF1/PD-L1 激活具有复杂效应。这些发现表明,评估黑色素瘤患者的 p53 状态对于预测对 PD-L1 单药治疗和/或 p53 通路参与整体应答的双重治疗的反应将很重要。
癌细胞上的 PD-L1 表达是肿瘤免疫逃逸的重要机制,靶向 PD-L1/PD1 相互作用的免疫治疗是黑色素瘤患者的常见治疗选择。然而,许多患者对治疗无应答,新的应答预测因子正在不断涌现。p53 通路被认为是 PD-L1 的一个可能调节因子,尽管 p53 通路功能与激活之间的关系尚不清楚。
该研究是在具有不同p53状态的人黑色素瘤细胞系上进行的。我们通过免疫印迹和mRNA表达研究了PD-L1及参与IFN信号传导的蛋白,并通过流式细胞术检测了PD-L1的膜表达。我们评估了NK细胞基于p53状态识别和杀伤靶肿瘤细胞能力的差异。我们还研究了蛋白酶体降解和蛋白半衰期、IFN信号传导及p53激活对生物学结果的影响,并利用黑色素瘤细胞系和黑色素瘤患者的现有数据进行了生物信息学分析。
我们证明p53状态通过IRF1调控改变膜和总PD-L1蛋白水平,并表明p53缺失影响新发现的SOX10/IRF1调控轴。生物信息学分析发现黑色素瘤中SOX10对p53状态的依赖性,以及两种转录因子对免疫信号的共同调控。然而,p53激活对IRF1/PD-L1的调控揭示了复杂的调控机制,改变IRF1 mRNA但不改变蛋白水平。IFN激活显示基于TP53状态无显著差异,尽管p53激活与IFN联合处理证实了p53与IRF1/PD-L1轴之间存在复杂的调控环路。
PD-L1 expression on cancer cells is an important mechanism of tumor immune escape, and immunotherapy targeting the PD-L1/PD1 interaction is a common treatment option for patients with melanoma. However, many patients do not respond to treatment and novel predictors of response are emerging. One suggested modifier of PD-L1 is the p53 pathway, although the relationship of p53 pathway function and activation is poorly understood.
The study was performed on human melanoma cell lines with various p53 status. We investigated PD-L1 and proteins involved in IFN signaling by immunoblotting and mRNA expression, as well as membrane expression of PD-L1 by flow cytometry. We evaluated differences in the ability of NK cells to recognize and kill target tumor cells on the basis of p53 status. We also investigated the influence of proteasomal degradation and protein half-life, IFN signaling and p53 activation on biological outcomes, and performed bioinformatic analysis using available data for melanoma cell lines and melanoma patients.
We demonstrate that p53 status changes the level of membrane and total PD-L1 protein through IRF1 regulation and show that p53 loss influences the recently discovered SOX10/IRF1 regulatory axis. Bioinformatic analysis identified a dependency of SOX10 on p53 status in melanoma, and a co-regulation of immune signaling by both transcription factors. However, IRF1/PD-L1 regulation by p53 activation revealed complicated regulatory mechanisms that alter IRF1 mRNA but not protein levels. IFN activation revealed no dramatic differences based on TP53 status, although dual p53 activation and IFN treatment confirmed a complex regulatory loop between p53 and the IRF1/PD-L1 axis.
We show that p53 loss influences the level of PD-L1 through IRF1 and SOX10 in an isogenic melanoma cell model, and that p53 loss affects NK-cell cytotoxicity toward tumor cells. Moreover, activation of p53 by MDM2 inhibition has a complex effect on IRF1/PD-L1 activation. These findings indicate that evaluation of p53 status in patients with melanoma will be important for predicting the response to PD-L1 monotherapy and/or dual treatments where p53 pathways participate in the overall response.
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