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干扰素-γ 抵抗和免疫逃避在神经胶质瘤中通过 Notch 调控的恶性细胞和免疫细胞的共同进化发展。

Interferon-γ resistance and immune evasion in glioma develop via Notch-regulated co-evolution of malignant and immune cells.

机构信息

Embryology and Stem Cell Biology, Department of Biomedicine, University of Basel, Mattenstrasse 28, 4058 Basel, Switzerland.

Swiss Institute of Bioinformatics, Hebelstrasse 20, 4031 Basel, Switzerland; Bioinformatics Core Facility, Department of Biomedicine, University of Basel, Hebelstrasse 20, 4031 Basel, Switzerland.

出版信息

Dev Cell. 2022 Aug 8;57(15):1847-1865.e9. doi: 10.1016/j.devcel.2022.06.006. Epub 2022 Jul 7.

Abstract

Immune surveillance is critical to prevent tumorigenesis. Gliomas evade immune attack, but the underlying mechanisms remain poorly understood. We show that glioma cells can sustain growth independent of immune system constraint by reducing Notch signaling. Loss of Notch activity in a mouse model of glioma impairs MHC-I and cytokine expression and curtails the recruitment of anti-tumor immune cell populations in favor of immunosuppressive tumor-associated microglia/macrophages (TAMs). Depletion of T cells simulates Notch inhibition and facilitates tumor initiation. Furthermore, Notch-depleted glioma cells acquire resistance to interferon-γ and TAMs re-educating therapy. Decreased interferon response and cytokine expression by human and mouse glioma cells correlate with low Notch activity. These effects are paralleled by upregulation of oncogenes and downregulation of quiescence genes. Hence, suppression of Notch signaling enables gliomas to evade immune surveillance and increases aggressiveness. Our findings provide insights into how brain tumor cells shape their microenvironment to evade immune niche control.

摘要

免疫监视对于防止肿瘤发生至关重要。然而,胶质瘤能够逃避免疫攻击,其潜在机制仍知之甚少。我们发现,通过降低 Notch 信号,胶质瘤细胞可以在不受免疫系统限制的情况下维持生长。在胶质瘤的小鼠模型中,Notch 活性的丧失会损害 MHC-I 和细胞因子的表达,并限制抗肿瘤免疫细胞群的募集,有利于免疫抑制性肿瘤相关小胶质细胞/巨噬细胞(TAMs)。耗尽 T 细胞模拟 Notch 抑制,促进肿瘤起始。此外,Notch 耗尽的胶质瘤细胞对干扰素-γ产生抗性,TAMs 重新教育治疗。人和小鼠胶质瘤细胞的干扰素反应和细胞因子表达降低与 Notch 活性降低相关。这些效应与癌基因的上调和静止基因的下调平行。因此,抑制 Notch 信号可以使胶质瘤逃避免疫监视并增加侵袭性。我们的研究结果提供了关于脑肿瘤细胞如何塑造其微环境以逃避免疫生态位控制的见解。

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