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 and HIF signalling in tumour microenvironment: linking immune evasion, metabolic rewiring and epigenetic regulation.
Hypoxia and HIF signalling in tumour microenvironment: linking immune evasion, metabolic rewiring and epigenetic regulation.
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缺氧是 TME 内的核心组织力量,协调血管生成、免疫、代谢和表观遗传过程,从而促进肿瘤进展。靶向 HIF 驱动的通路是一种有前景的治疗策略,可克服免疫抵抗、增强药物递送并提高联合治疗(包括免疫治疗和代谢干预)的疗效。本综述强调了采用整合方法破坏缺氧介导的肿瘤适应的重要性。
缺氧是肿瘤微环境(TME)的一个决定性特征,通过协调的适应性反应驱动肿瘤的侵袭性行为。缺氧诱导因子(HIFs),尤其是HIF-1α,在协调肿瘤内代谢、免疫和表观遗传重编程中发挥核心作用。
本综述旨在阐明缺氧在调节血管生成、免疫抑制、代谢适应和表观遗传修饰中的综合作用,并强调它们对肿瘤进展和治疗耐药的共同影响。
为探讨TME内缺氧和HIF信号介导的分子和细胞机制,对其相互作用在血管生成、免疫、代谢和表观遗传通路中的作用进行了全面综述。
HIF-1α促进促血管生成因子的表达,包括VEGF、ANGPT2和CXCL12,导致异常血管化以及调节性T细胞和髓源性抑制细胞等免疫抑制细胞的募集。这种紊乱的血管结构加剧缺氧,强化免疫逃逸和代谢应激的循环。缺氧还上调免疫检查点分子(如PD-L1、PD-1),导致T细胞耗竭和树突状细胞功能受损。同时,以糖酵解增加、乳酸积累和细胞外酸化为特征的代谢重编程抑制细胞毒性T细胞和NK细胞活性。表观遗传调控因子,包括组蛋白去甲基化酶和DNA甲基转移酶,通过持续的转录变化维持这些适应性改变,称为缺氧记忆。
Hypoxia is a defining feature of the tumour microenvironment (TME) that drives aggressive tumour behaviour through coordinated adaptive responses. Hypoxia-inducible factors (HIFs), particularly HIF-1α, play a central role in orchestrating metabolic, immune and epigenetic reprogramming within tumours.
This review aims to elucidate the integrated roles of hypoxia in regulating angiogenesis, immune suppression, metabolic adaptation and epigenetic modifications, and to highlight their collective impact on tumour progression and therapeutic resistance.
A comprehensive review of current literature was conducted to examine the molecular and cellular mechanisms mediated by hypoxia and HIF signalling within the TME, with a focus on their interplay across angiogenic, immune, metabolic and epigenetic pathways.
HIF-1α promotes the expression of pro-angiogenic factors, including VEGF, ANGPT2 and CXCL12, leading to abnormal vascularisation and recruitment of immunosuppressive cells such as regulatory T cells and myeloid-derived suppressor cells. This disorganised vasculature exacerbates hypoxia, reinforcing a cycle of immune evasion and metabolic stress. Hypoxia also upregulates immune checkpoint molecules (e.g., PD-L1, PD-1), contributing to T-cell exhaustion and impaired dendritic cell function. Concurrently, metabolic reprogramming-characterised by increased glycolysis, lactate accumulation and extracellular acidification-suppresses cytotoxic T cell and NK cell activity. Epigenetic regulators, including histone demethylases and DNA methyltransferases, sustain these adaptations through persistent transcriptional changes, referred to as hypoxic memory.
Hypoxia acts as a central organising force within the TME, coordinating angiogenic, immune, metabolic and epigenetic processes to promote tumour progression. Targeting HIF-driven pathways represents a promising therapeutic strategy to overcome immune resistance, enhance drug delivery and improve the efficacy of combination treatments, including immunotherapy and metabolic interventions. This review underscores the importance of integrated approaches to disrupt hypoxia-mediated tumour adaptation.
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