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:Advances in Metabolic Reprogramming and Immune Regulatory Mechanisms in Lung Cancer.
Advances in Metabolic Reprogramming and Immune Regulatory Mechanisms in Lung Cancer.
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肺癌仍是全球癌症相关死亡的主要原因,其主要驱动因素为肿瘤细胞内的代谢重编程和免疫逃逸机制。为了适应营养匮乏的肿瘤微环境(TME),肺癌细胞发生深刻的代谢重编程,其特征为糖酵解增强(Warburg效应)、谷氨酰胺依赖性增加(由GLS1介导)以及脂质合成加速(涉及FASN等酶)。这些代谢改变不仅重塑TME,还通过促进免疫抑制性细胞群体(如Tregs和M2巨噬细胞)并抑制CD8+ T细胞和自然杀伤(NK)细胞的效应功能,从而削弱抗肿瘤免疫应答。关键的是,肿瘤细胞代谢与免疫抑制性TME之间存在双向交互作用:代谢重编程通过代谢物积累驱动免疫抑制,而免疫抑制性TME反过来促进肿瘤细胞的适应性——从而形成正反馈环路,强化免疫逃逸和治疗耐药。本综述阐明了调控肺癌代谢重编程的关键分子通路——涵盖葡萄糖、氨基酸和脂质代谢——及其与免疫调节的动态交互作用,包括表观遗传修饰和非编码RNA介导的机制。
此外,本综述评估了靶向代谢-免疫轴的新兴治疗策略,如HK2或GLS1抑制剂联合抗PD-1/PD-L1药物,旨在逆转免疫抑制并改善临床结局。通过综合近期进展,本工作为精准肿瘤学干预提供了理论框架,强调了代谢免疫疗法的潜力以及整合AI和多组学数据以克服肺癌耐药性的未来方向。
Lung cancer remains the leading cause of cancer-related mortality worldwide, primarily driven by metabolic reprogramming and immune evasion mechanisms within tumor cells. To adapt to the nutrient-deprived tumor microenvironment (TME), lung cancer cells undergo profound metabolic reprogramming, characterized by enhanced glycolysis (the Warburg effect), increased glutamine dependency (mediated by GLS1), and accelerated lipid synthesis (involving enzymes such as FASN). These metabolic alterations not only remodel the TME but also dampen antitumor immune responses by promoting immunosuppressive cell populations (e. g. , Tregs and M2 macrophages) and inhibiting effector functions of CD8 + T cells and natural killer (NK) cells.
Critically, a bidirectional crosstalk operates between tumor cell metabolism and the immunosuppressive TME: metabolic reprogramming drives immune suppression through metabolite accumulation, whereas the immunosuppressive TME, in turn, promotes tumor cell adaptability-thus forming a positive feedback loop that reinforces immune evasion and therapy resistance.
This review elucidates key molecular pathways governing metabolic reprogramming in lung cancer-spanning glucose, amino acid, and lipid metabolism-and their dynamic crosstalk with immune regulation, including epigenetic modifications and non-coding RNA-mediated mechanisms.
Additionally, it evaluates emerging therapeutic strategies targeting the metabolic-immune axis, such as inhibitors of HK2 or GLS1 combined with anti-PD-1/PD-L1 agents, which aim to reverse immunosuppression and improve clinical outcomes. By synthesizing recent advances, this work provides a theoretical framework for precision oncology interventions, highlighting the potential of metabolic immunotherapies and future directions integrating AI and multi-omics data to overcome resistance in lung cancer.
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