研究概要
Warburg 效应既是 GC 进展的核心驱动因素,也是具有临床相关性的代谢脆弱点。胃癌中的 Warburg 效应是一种多模块代谢状态,而非单一的糖酵解表型。乳酸将糖酵解重编程与基质活化、免疫逃逸和治疗耐药联系起来。微生物群,尤其是 H.
研究思路结论见上方概要
背景
胃癌(GC)因诊断时多为晚期且对全身治疗耐药,仍是重大的健康负担。主体:在GC中,Warburg效应由相互关联的缺氧和致癌信号、非编码RNA网络以及转录和表观遗传重编程驱动。这些调控因子汇聚于葡萄糖转运和核心糖酵解酶,包括HK2、PFKFB3、PKM2和LDHA。由此导致的有氧糖酵解增加、丙酮酸向乳酸转化以及乳酸外排,支持生物合成、氧化还原稳态和在代谢应激下的存活。除生物能量作用外,乳酸还作为一种信号代谢物,使肿瘤微环境酸化并重塑其结构。它损害CD8阳性T细胞和NK 细胞功能,促进调节性T细胞积聚和M2巨噬细胞极化,激活基质细胞,并促进上皮-间质转化和免疫逃逸。总之,肿瘤内在的代谢适应和乳酸介导的微环境重编程共同导致对化疗、靶向治疗和免疫治疗的耐药。在转化方面,代谢成像、循环LDH和乳酸相关标志物、外泌体糖酵解酶、基因表达特征以及乳酸化相关特征可能改善预后评估、治疗反应预测和患者分层。这些发现支持在标准治疗之外,采用生物标志物指导的联合策略,靶向肿瘤代谢、乳酸生成或转运以及基质-免疫串扰。本综述独特地整合了直接来源于GC的证据与来自非GC模型和临床试验的间接证据,并根据转化成熟度对生物标志物和代谢干预措施进行分级。
展开英文摘要原文
BACKGROUND: Gastric cancer (GC) remains a major health burden because of late-stage diagnosis and resistance to systemic therapy.
MAIN BODY: In GC, the Warburg effect is driven by interconnected hypoxia and oncogenic signalling, non-coding RNA networks and transcriptional and epigenetic rewiring. These regulators converge on glucose transport and core glycolytic enzymes, including HK2, PFKFB3, PKM2 and LDHA. The resulting increase in aerobic glycolysis, pyruvate-to-lactate conversion and lactate export supports biosynthesis, redox homeostasis and survival under metabolic stress. Beyond its bioenergetic role, lactate acts as a signalling metabolite that acidifies and remodels the tumour microenvironment. It impairs CD8-positive T and natural killer cells function, promotes regulatory T cells accumulation and M2 macrophages polarisation, activates stromal cells and facilitates epithelial-mesenchymal transition and immune evasion. Together, tumour-intrinsic metabolic adaptation and lactate-mediated microenvironmental reprogramming contribute to resistance to chemotherapy, targeted therapy and immunotherapy. Translationally, metabolic imaging, circulating LDH and lactate-related markers, exosomal glycolytic enzymes, gene-expression signatures and lactylation-related features may improve prognostic assessment, treatmentresponse prediction and patient stratification. These findings support biomarker-guided combination strategies that target tumour metabolism, lactate production or transport and stromalimmune crosstalk alongside standard therapies. This review uniquely integrates direct GC-derived evidence with indirect evidence from non-GC models and clinical trials and grades biomarkers and metabolic interventions according to their translational maturity.
CONCLUSION: Overall, the Warburg effect represents both a central driver of GC progression and a clinically relevant metabolic vulnerability.
KEY POINTS: The Warburg effect in gastric cancer is a multi-module metabolic state, not a single glycolytic phenotype. Lactate links glycolytic reprogramming to stromal activation, immune evasion and therapy resistance. Microbiota, especially H. pylori, modulates glycolysis and creates actionable upstream vulnerabilities. Biomarker-guided combinations, rather than isolated glycolytic inhibition, define the translational path forward.
论文信息
- 作者
- Liu G、Li P、Li Z、Li J、Zhang C、Wang Y、Kang W、Ye X
- 单位
- Department of General Surgery, Peking Union Medical College Hospital, Chinese Academy of Medical Sciences & Peking Union Medical College, Beijing, China.China
- 文献类型
- 综述 · 非美国政府资助研究
- 期刊
- Clinical and translational medicine2026 Aug