CD81 通过阻断 CD274/PD-L1 的选择性自噬降解驱动放射抵抗性胶质母细胞瘤的免疫逃逸
CD81 drives immune evasion in radioresistant glioblastoma by blocking selective autophagic degradation of CD274/PD-L1.
我们的工作确立了CD81作为连接放射抵抗与免疫逃逸的关键桥梁,其通过维持GBM中CD274的丰度发挥作用,并突显CD81作为优化放射免疫治疗的有前景的治疗靶点。
英文原题:Metabolic Reprogramming Of Macrophages In Breast Cancer: Mechanisms And Therapeutic Implications.
深入阐明巨噬细胞代谢重编程的分子机制及其与乳腺癌细胞的代谢串扰,将为乳腺癌的精准免疫代谢治疗提供新的见解和新的治疗靶点。
作为肿瘤微环境(TME)中的关键免疫细胞,巨噬细胞极化为促炎M1或抗炎M2表型,其功能状态与代谢通路动态密切相关。本综述全面探讨了巨噬细胞在糖酵解、脂质代谢、谷氨酰胺代谢、磷酸戊糖途径(PPP)、线粒体功能、三羧酸(TCA)循环和氨基酸代谢中的代谢重编程,同时探索了其对乳腺癌免疫微环境和治疗策略的意义。在M1巨噬细胞中,糖酵解显著增强,通过乳酸积累和活性氧(ROS)产生促进炎症反应。同时,TCA循环在柠檬酸和琥珀酸节点被打断,导致代谢中间产物积累,进一步强化促炎表型。另一方面,M2巨噬细胞依赖氧化磷酸化(OXPHOS)和脂肪酸氧化(FAO)。它们通过α-酮戊二酸(α-KG)等代谢物调控表观遗传修饰,以维持抗炎和组织修复功能。乳腺癌细胞通过谷氨酰胺竞争和外泌体分泌重编程巨噬细胞,驱动M2极化以支持肿瘤进展。不同分子亚型表现出不同的代谢特征:三阴性乳腺癌(TNBC)显示高糖酵解活性和谷氨酰胺成瘾,而激素受体阳性乳腺癌更依赖外源性氨基酸摄取。靶向糖酵解或谷氨酰胺代谢可将肿瘤相关巨噬细胞(TAMs)逆转为抗肿瘤M1样状态,增强免疫力。尽管代谢干预策略(如抑制关键酶己糖激酶2(HK2)、谷氨酰胺酶(GLS)或脂肪酸结合蛋白4(FABP4))显示出治疗潜力,但现有研究仍存在局限性:代谢途径之间的代偿效应、肿瘤异质性以及临床转化不足。新兴策略,包括代谢检查点靶向、CAR-巨噬细胞(CAR-M)和基于仿生纳米载体的递送系统,有望克服这些挑战。总之,深入阐明巨噬细胞代谢重编程的分子机制及其与乳腺癌细胞的代谢串扰,将为乳腺癌的精准免疫代谢治疗提供新的见解和新的治疗靶点。
As key immune cells in the tumor microenvironment (TME), macrophages polarize into pro-inflammatory M1 or anti-inflammatory M2 phenotypes, with their functional states tightly linked to metabolic pathway dynamics. This review comprehensively examines macrophage metabolic reprogramming in glycolysis, lipid metabolism, glutamine metabolism, the pentose phosphate pathway (PPP), mitochondrial function, the tricarboxylic acid (TCA) cycle, and amino acid metabolism, while exploring their implications for breast cancer's immune microenvironment and therapeutic approaches. In M1 macrophages, glycolysis is significantly enhanced, promoting the inflammatory response through lactate accumulation and reactive oxygen species (ROS) production. Simultaneously, the TCA cycle is disrupted at the citrate and succinate nodes, leading to the accumulation of metabolic intermediates and further strengthening the pro-inflammatory phenotype. On the other hand, M2 macrophages depend on oxidative phosphorylation (OXPHOS) and fatty acid oxidation (FAO). They regulate epigenetic modifications through metabolites such as alpha-ketoglutarate (α-KG) to maintain anti-inflammatory and tissue repair functions. Breast cancer cells reprogram macrophages via glutamine competition and exosome secretion, driving M2 polarization to support tumor progression. Different molecular subtypes exhibit distinct metabolic features: triple-negative breast cancer (TNBC) shows high glycolytic activity and glutamine addiction, whereas hormone receptor-positive breast cancer relies more on exogenous amino acid uptake. Targeting glycolysis or glutamine metabolism can revert tumor-associated macrophages (TAMs) to an anti-tumor M1-like state, boosting immunity. Although metabolic intervention strategies (such as inhibiting key enzymes hexokinase 2 (HK2), glutaminase (GLS), or fatty Acid Binding Protein 4 (FABP4)) show therapeutic potential, existing studies still have limitations: the compensatory effects between metabolic pathways, tumor heterogeneity, and insufficient clinical translation. Emerging strategies, including metabolic checkpoint targeting, CAR-macrophages (CAR-M), and biomimetic nanocarrier-based delivery systems, hold promise for overcoming these challenges. In summary, in-depth elucidation of the molecular mechanisms underlying macrophage metabolic reprogramming and their metabolic crosstalk with breast cancer cells will provide new insights and novel therapeutic targets for the precise immunometabolic therapy of breast cancer.
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