缺氧和HIF1在黑色素瘤中调节(ifn γ-诱导的)PD-L1表达中的次要作用。

IF 5.1
Cancer immunology, immunotherapy : CII Pub Date : 2022-03-01 Epub Date: 2021-07-15 DOI:10.1007/s00262-021-03007-1
Anneloes van Duijn, Karin J Willemsen, Nathalie O P van Uden, Lieke Hoyng, Sterre Erades, Jan Koster, Rosalie M Luiten, Walbert J Bakker
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引用次数: 11

摘要

癌细胞能够通过上调程序性死亡配体1 (PD-L1)来逃避免疫监视。PD-L1表达的一个关键调控因子是ifn - γ/JAK/STAT通路的转录刺激。最近的研究表明,缺氧可以诱导PD-L1的表达。由于缺氧是实体瘤发展的标志,缺氧控制PD-L1表达可能会影响肿瘤免疫治疗的效果。本研究旨在探讨缺氧对人黑色素瘤中PD-L1表达的调节,及其与ifn γ诱导的PD-L1表达的相互作用。对来自癌症基因组图谱的皮肤黑色素瘤数据集的分析揭示了hif1信号基因集特征与PD-L1 mRNA表达的显著相关性。然而,与其他已知的控制PD-L1表达的关键途径(包括ifn - γ/JAK/STAT途径)相比,这种相关性不那么明显。通过分析33个人类黑色素瘤组织的单细胞rna测序数据,证实了HIF1在PD-L1调节中的次要作用。有趣的是,PD-L1在这些黑色素瘤组织中的表达主要在巨噬细胞中发现。然而,同样在这些细胞中,STAT1而非HIF1与PD-L1表达的相关性最为明显。此外,我们观察到缺氧对人类黑色素瘤细胞系中PD-L1表达的影响存在差异。HIF1表达下调表明HIF1在调节PD-L1表达中的作用较小。缺氧对ifn γ诱导的PD-L1 mRNA表达的影响更为明显,该mRNA表达受952 bp PD-L1启动子片段的控制。这些发现显示了缺氧对IFNγ诱导的PD-L1表达的影响,这与免疫治疗有关,因为IFNγ和缺氧经常存在于肿瘤微环境中。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

A secondary role for hypoxia and HIF1 in the regulation of (IFNγ-induced) PD-L1 expression in melanoma.

A secondary role for hypoxia and HIF1 in the regulation of (IFNγ-induced) PD-L1 expression in melanoma.

A secondary role for hypoxia and HIF1 in the regulation of (IFNγ-induced) PD-L1 expression in melanoma.

A secondary role for hypoxia and HIF1 in the regulation of (IFNγ-induced) PD-L1 expression in melanoma.

Cancer cells are able to escape immune surveillance by upregulating programmed death ligand 1 (PD-L1). A key regulator of PD-L1 expression is transcriptional stimulation by the IFNγ/JAK/STAT pathway. Recent studies suggest that hypoxia can induce PD-L1 expression. As hypoxia presents a hallmark of solid tumor development, hypoxic control of PD-L1 expression may affect the efficacy of cancer immunotherapy. This study aims to explore the hypoxic regulation of PD-L1 expression in human melanoma, and its interaction with IFNγ-induced PD-L1 expression. Analysis of the cutaneous melanoma dataset from the cancer genome atlas revealed a significant correlation of the HIF1-signaling geneset signature with PD-L1 mRNA expression. However, this correlation is less pronounced than other key pathways known to control PD-L1 expression, including the IFNγ/JAK/STAT pathway. This secondary role of HIF1 in PD-L1 regulation was confirmed by analyzing single-cell RNA-sequencing data of 33 human melanoma tissues. Interestingly, PD-L1 expression in these melanoma tissues was primarily found in macrophages. However, also in these cells STAT1, and not HIF1, displayed the most pronounced correlation with PD-L1 expression. Moreover, we observed that hypoxia differentially affects PD-L1 expression in human melanoma cell lines. Knockdown of HIF1 expression indicated a minor role for HIF1 in regulating PD-L1 expression. A more pronounced influence of hypoxia was found on IFNγ-induced PD-L1 mRNA expression, which is controlled at a 952 bp PD-L1 promoter fragment. These findings, showing the influence of hypoxia on IFNγ-induced PD-L1 expression, are relevant for immunotherapy, as both IFNγ and hypoxia are frequently present in the tumor microenvironment.

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