CAR-T(CAR-T)细胞疗法在非肿瘤性疾病中的应用
Chimeric antigen receptor T (CAR-T) cell therapy in non-oncological diseases.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Lactate metabolism and protein lactylation in cancer.
Lactate metabolism and protein lactylation in cancer.
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乳酸化是最近发现的一种翻译后修饰,将细胞代谢与基因调控联系起来,在癌症发展和肿瘤微环境(TME)中发挥关键作用。乳酸化源于糖酵解和谷氨酰胺代谢产生的乳酸,发生在组蛋白和非组蛋白上,调节转录、蛋白质功能和细胞信号传导。在肿瘤中,乳酸化通过影响Treg细胞、巨噬细胞、树突状细胞和NK细胞的功能,促进增殖、转移、治疗耐药和免疫逃逸。其由“写入器”(如p300)、“擦除器”(如组蛋白去乙酰化酶(HDACs)、Sirtuins3(SIRT3))和转运体(如单羧酸转运体(MCT)1/4)的动态调控为治疗提供了多个干预点。临床前研究表明,直接或间接靶向乳酸化——通过LDH(乳酸脱氢酶)抑制、MCT阻断或调节乳酸转移酶——可增强免疫检查点抑制剂、CAR-T(CAR-T)疗法和化疗药物的疗效。尽管取得了这些进展,关键问题仍然存在,包括乳酸化与其他翻译后修饰相比的特异性、最依赖乳酸化的肿瘤类型,以及指导治疗的可靠生物标志物。
此外,靶向乳酸化策略的临床验证有限。未来的研究需要整合机制研究、患者来源样本和多组学方法,以阐明情境依赖性功能、优化治疗靶点并开发精准干预措施。本综述全面总结了癌症中乳酸化生物学的研究进展,重点阐述了其代谢-表观遗传相互作用、免疫调节作用及治疗潜力。通过综合现有证据,我们旨在为未来针对乳酸化的研究和临床策略提供指导,以改善癌症治疗结局。
Lactylation is a recently identified post-translational modification that links cellular metabolism to gene regulation, playing pivotal roles in cancer development and the tumor microenvironment (TME). Derived from lactate produced by glycolysis and glutamine metabolism, lactylation occurs on both histone and non-histone proteins, modulating transcription, protein function, and cellular signaling. In tumors, lactylation contributes to proliferation, metastasis, therapy resistance, and immune evasion by influencing the function of Treg cells, macrophages, dendritic cells, and NK cells. Its dynamic regulation by "writers" (e. g. , p300), "erasers" (e. g.
, Histone deacetylases (HDACs), Sirtuins3 (SIRT3)), and transporters (e. g. , monocarboxylate transporters (MCT) 1/4) provides multiple intervention points for therapy. Preclinical studies demonstrate that targeting lactylation directly or indirectly-through LDH (lactate dehydrogenase) inhibition, MCT blockade, or modulation of lactyltransferases-enhances the efficacy of immune checkpoint inhibitors, Chimeric Antigen Receptor T (CAR-T) therapy, and chemotherapeutic agents.
Despite these advances, critical questions remain regarding the specificity of lactylation compared with other post-translational modifications, the tumor types most dependent on lactylation, and reliable biomarkers to guide treatment.
Additionally, clinical validation of lactylation-targeting strategies is limited. Future research integrating mechanistic studies, patient-derived samples, and multi-omics approaches is essential to elucidate context-dependent functions, refine therapeutic targets, and develop precision interventions.
This review provides a comprehensive summary of lactylation biology in cancer, highlighting its metabolic-epigenetic interplay, immunomodulatory roles, and therapeutic potential. By synthesizing current evidence, we aim to guide future studies and clinical strategies targeting lactylation to improve cancer treatment outcomes.
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