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:Advances in tumor-associated macrophage-mediated chemotherapeutic resistance in glioma.
Advances in tumor-associated macrophage-mediated chemotherapeutic resistance in glioma.
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肿瘤相关巨噬细胞(TAM)是胶质瘤微环境中的主要免疫成分,且日益被认为是治疗耐药的关键因素;治疗耐药是胶质瘤管理的主要挑战。理解TAM作用对于开发新疗法至关重要。本综述总结TAM介导胶质瘤化疗耐药的现有认识。TAM来源于骨髓单核细胞和组织驻留小胶质细胞,具有显著异质性和可塑性,尤其表现为促炎M1和促肿瘤M2表型的差异。M2样TAM通过多种机制驱动耐药:(1)调节药物代谢/清除,如通过细胞色素P450酶和P-糖蛋白;(2)分泌促肿瘤因子,如TNF-α、IL-4/IL-6/IL-10等白细胞介素、CCL5/CCL22等趋化因子及VEGF/EGF等生长因子,以激活存活通路、诱导免疫抑制、促进血管生成和上皮-间质转化(EMT);(3)与胶质瘤干细胞(GSC)相互作用以维持干性;(4)促进微环境适应,如缺氧/HIF-1应答;(5)通过基质金属蛋白酶(MMP)重塑细胞外基质(ECM),提高基质硬度并妨碍药物穿透。
靶向TAM有望克服耐药。相关策略包括:(1)使用TLR、STING、CD40激动剂或STAT3/STAT6抑制剂,将M2重编程为M1表型;(2)代谢调节,如靶向糖酵解、脂肪酸氧化和谷氨酰胺分解;(3)阻断CCL2/CCR2、CSF-1/CSF-1R、CXCL12/CXCR4等募集轴;(4)清除M2-TAM,如使用曲贝替定、CAR-T 细胞或M2pep药物;(5)增强吞噬,如阻断SIRPα/CD47或SIGLEC。TAM通过多种分子和细胞机制介导胶质瘤化疗耐药。靶向TAM募集、极化、功能或代谢是有前景的治疗方向。
然而,胶质瘤微环境和血脑屏障的复杂性意味着临床转化需要联合策略。仍需进一步研究优化特异性,并克服补偿通路和药物递送等挑战。
Tumor-associated macrophages (TAMs) are a dominant immune component within the glioma microenvironment and are increasingly recognized as key contributors to therapeutic resistance, the major challenge in glioma management. Understanding their role is critical for developing novel therapies. This review synthesizes current knowledge on TAM-mediated chemoresistance in glioma. TAMs originate from bone marrow-derived monocytes and resident microglia, exhibiting significant heterogeneity and plasticity, particularly between pro-inflammatory (M1) and pro-tumorigenic (M2) phenotypes. M2-like TAMs drive resistance through multiple mechanisms: (1) Modulating drug metabolism/clearance (e. g. , via CYP450 enzymes and P-glycoprotein); (2) Secreting protumor factors (TNF- , ILs like IL-4/IL-6/IL-10, chemokines like CCL5/CCL22, growth factors like VEGF/EGF) that activate survival pathways, induce immunosuppression, promote angiogenesis, and enhance epithelial-mesenchymal transition (EMT); (3) Interacting with glioma stem cells (GSCs) to maintain stemness; (4) Facilitating microenvironmental adaptation (e.
g. , hypoxia/HIF-1 response); (5) Remodeling the extracellular matrix (ECM) via MMPs, increasing stiffness and impairing drug penetration. Targeting TAMs offers promising approaches to overcome resistance. Strategies include: (1) Reprogramming M2 to M1 phenotypes using agonists (TLR, STING, CD40) or inhibitors (STAT3/STAT6); (2) Metabolic modulation (targeting glycolysis, fatty acid oxidation, glutaminolysis); (3) Blocking recruitment axes (CCL2/CCR2, CSF-1/CSF-1R, CXCL12/CXCR4); (4) Depleting M2-TAMs (e.
g. , trabectedin, CAR-T cells, M2pep-drugs); (5) Enhancing phagocytosis (anti-SIRP /CD47, anti-SIGLEC). TAMs are pivotal mediators of chemoresistance in glioma through diverse molecular and cellular mechanisms. Targeting TAM recruitment, polarization, function, or metabolism represents a promising therapeutic avenue.
However, the complexity of the glioma microenvironment and blood-brain barrier necessitate combination strategies for clinical translation.
Further research is needed to optimize specificity and overcome challenges like compensatory pathways and drug delivery.
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