研究概要
胃癌(GC)仍是全球癌症相关死亡的主要原因,仅一部分患者能从免疫检查点阻断(ICB)中获得持久获益。
中文摘要
胃癌(GC)仍是全球癌症相关死亡的主要原因,且仅有一部分患者能从免疫检查点阻断(ICB)中获得持久获益。这提示肿瘤微环境(TME)中的非基因组屏障在很大程度上限制了抗肿瘤免疫。越来越多证据表明,肿瘤内在的糖酵解重编程和乳酸蓄积促成了这种免疫抵抗。致癌信号、缺氧诱导因子-1α(HIF-1α)、磷脂酰肌醇3-激酶/蛋白激酶B/机制性雷帕霉素靶蛋白(mTOR)通路以及非编码RNA网络可促进糖酵解酶和乳酸转运体的表达,包括己糖激酶2、6-磷酸果糖-2-激酶/果糖-2,6-二磷酸酶3(PFKFB3)、丙酮酸激酶M2、乳酸脱氢酶A(LDHA)和单羧酸转运体,从而建立一个糖酵解高、乳酸丰富的TME。在这一代谢微环境中,乳酸作为一种生物活性介质发挥作用,通过羟基羧酸受体1/G蛋白偶联受体81依赖性信号传导和组蛋白乳酸化,损害树突状细胞分化和交叉致敏,削弱细胞毒性T细胞和NK 细胞活性,并促进M2样巨噬细胞和髓源性抑制细胞。癌相关成纤维细胞和间充质干/基质细胞通过糖酵解、乳酸穿梭、细胞因子分泌、细胞外基质重塑以及外泌体介导的促糖酵解非编码RNA转移,进一步强化这一状态。这些相互作用产生了以乳酸蓄积、基质重塑、异常血管生成和CD8 + T细胞浸润不良为特征的空间组织化免疫代谢微环境。本综述总结了GC中糖酵解重编程的分子驱动因素、以乳酸为中心的串扰重塑基质和免疫区室的机制,以及靶向LDHA/单羧酸转运蛋白4、PFKFB3、HIF-1α/mTOR、表观遗传调控因子和重定位代谢药物联合programmed death-1/programmed death-ligand 1阻断的新兴治疗策略。还讨论了氟-18氟脱氧葡萄糖正电子发射断层扫描/计算机断层扫描、放射组学、糖酵解和乳酸化相关基因特征、外泌体生物标志物和动态代谢监测如何支持患者分层和反应预测。通过以糖酵解为中心的免疫代谢框架审视选定的GC亚型,可能有助于指导代谢和免疫干预的合理整合,以克服代谢保护性、ICB难治性疾病。
展开英文摘要原文
Gastric cancer (GC) remains a major cause of cancer‑related mortality worldwide, and only a subset of patients achieves durable benefit from immune checkpoint blockade (ICB). This suggests that non‑genomic barriers within the tumor microenvironment (TME) substantially limit antitumor immunity. Increasing evidence indicates that tumor‑intrinsic glycolytic reprogramming and lactate accumulation contribute to this immune resistance. Oncogenic signaling, hypoxia‑inducible factor‑1α (HIF‑1α), phosphoinositide 3‑kinase/protein kinase B/mechanistic target of rapamycin (mTOR) pathways and noncoding RNA networks promote the expression of glycolytic enzymes and lactate transporters, including hexokinase 2, 6‑phosphofructo‑2‑kinase/fructose‑2,6‑biphosphatase 3 (PFKFB3), pyruvate kinase M2, lactate dehydrogenase A (LDHA) and monocarboxylate transporters, thereby establishing a glycolysis‑high, lactate‑rich TME. Within this metabolic niche, lactate functions as a bioactive mediator that impairs dendritic cell differentiation and cross‑priming, weakens cytotoxic T‑cell and natural killer‑cell activity, and promotes M2‑like macrophages and myeloid‑derived suppressor cells through hydroxycarboxylic acid receptor 1/G protein‑coupled receptor 81‑dependent signaling and histone lactylation. Cancer‑associated fibroblasts and mesenchymal stem/stromal cells further reinforce this state through glycolysis, lactate shuttling, cytokine secretion, extracellular matrix remodeling and exosome‑mediated transfer of glycolysis‑promoting noncoding RNAs. These interactions generate spatially organized immunometabolic niches characterized by lactate accumulation, stromal remodeling, abnormal angiogenesis and poor CD8 + T‑cell infiltration. The present review summarizes the molecular drivers of glycolytic reprogramming in GC, the mechanisms by which lactate‑centered crosstalk reshapes stromal and immune compartments, and emerging therapeutic strategies targeting LDHA/monocarboxylate transporter 4, PFKFB3, HIF‑1α/mTOR, epigenetic regulators and repurposed metabolic drugs in combination with programmed death‑1/programmed death‑ligand 1 blockade. It is also discussed how fluorine‑18 fluorodeoxyglucose positron emission tomography/computed tomography, radiomics, glycolysis‑ and lactylation‑related gene signatures, exosomal biomarkers and dynamic metabolic monitoring may support patient stratification and response prediction. Viewing selected GC subtypes through a glycolysis‑centered immunometabolic framework may help guide the rational integration of metabolic and immune interventions to overcome metabolically protected, ICB‑refractory disease.
论文信息
- 作者
- Zhang B、Shang L、Kuang Z、Wang C、Sun B、Kong F
- 单位
- Department of Oncology, First Teaching Hospital of Tianjin University of Traditional Chinese Medicine, Tianjin 300381, P.R. China.China
- 文献类型
- 综述
- 期刊
- International journal of oncology2026 Sep