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:Hypoxia-driven tumor immune escape: mechanisms and therapeutic opportunities.
Hypoxia-driven tumor immune escape: mechanisms and therapeutic opportunities.
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缺氧是实体瘤的共同特征,也是肿瘤免疫逃逸的主要驱动因素。它源于肿瘤血管异常和肿瘤快速生长,导致肿瘤微环境中持续或波动的氧剥夺。在缺氧条件下,缺氧诱导因子,尤其是 HIF-1α 和 HIF-2α,激活支持肿瘤存活、血管生成、糖酵解代谢、侵袭和治疗耐药的转录程序。除这些肿瘤内在效应外,缺氧还通过抑制 CD8 + T 细胞、NK 细胞和树突状细胞抗原呈递,同时促进调节性 T 细胞、肿瘤相关巨噬细胞和髓源性抑制细胞,从而重塑抗肿瘤免疫。这些变化建立了强免疫抑制性微环境,并降低免疫治疗的疗效。缺氧驱动的免疫逃逸由多种相互关联的机制介导。HIF 信号促进乳酸积累、酸中毒、腺苷信号、PD-L1 表达、髓系细胞募集和 T 细胞耗竭。
此外,新出现的证据表明,RNA 修饰,包括 m6A 和 ac4C,提供了转录后调控层,将缺氧信号与免疫检查点调控、趋化因子产生、髓系代谢和 HIF-1α 翻译联系起来。在治疗方面,靶向缺氧相关通路可能改善抗肿瘤免疫,但单药方法往往不足,因为缺氧肿瘤使用多种重叠的逃逸机制。涉及 HIF 抑制剂、代谢干预、免疫检查点阻断、细胞治疗优化和 RNA 表观转录组靶向的合理联合可能提供更有效的策略。在这篇综述中,我们总结了缺氧如何协调代谢屏障、免疫重塑、检查点激活和RNA修饰依赖性调控来驱动肿瘤免疫逃逸,并讨论了在癌症免疫治疗中靶向缺氧-代谢-免疫轴的未来方向。
Hypoxia is a common feature of solid tumors and a major driver of tumor immune escape. It arises from abnormal tumor vasculature and rapid tumor growth, leading to persistent or fluctuating oxygen deprivation within the tumor microenvironment. Under hypoxic conditions, hypoxia-inducible factors, especially HIF-1α and HIF-2α, activate transcriptional programs that support tumor survival, angiogenesis, glycolytic metabolism, invasion, and therapy resistance.
Beyond these tumor-intrinsic effects, hypoxia also reshapes antitumor immunity by suppressing CD8 + T cells, natural killer cells, and dendritic cell antigen presentation, while promoting regulatory T cells, tumor-associated macrophages, and myeloid-derived suppressor cells.
These changes establish a strongly immunosuppressive microenvironment and reduce the efficacy of immunotherapy. Hypoxia-driven immune escape is mediated by several interconnected mechanisms. HIF signaling promotes lactate accumulation, acidosis, adenosine signaling, PD-L1 expression, myeloid cell recruitment, and T cell exhaustion.
In addition, emerging evidence indicates that RNA modifications, including m6A and ac4C, provide a post-transcriptional regulatory layer that links hypoxia signaling with immune checkpoint regulation, chemokine production, myeloid metabolism, and HIF-1α translation. Therapeutically, targeting hypoxia-related pathways may improve antitumor immunity, but single-agent approaches are often insufficient because hypoxic tumors use multiple overlapping escape mechanisms.
Rational combinations involving HIF inhibitors, metabolic intervention, immune checkpoint blockade, cell therapy optimization, and RNA epitranscriptomic targeting may provide more effective strategies. In this review, we summarize how hypoxia coordinates metabolic barriers, immune remodeling, checkpoint activation, and RNA modification-dependent regulation to drive tumor immune escape, and discuss future directions for targeting the hypoxia-metabolism-immune axis in cancer immunotherapy.
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