CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Decoding the Role of MDSCs in Bone Metastasis: Multicellular Interactions and Clinical Implications.
Decoding the Role of MDSCs in Bone Metastasis: Multicellular Interactions and Clinical Implications.
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骨转移仍是晚期癌症患者发病负担的重要来源,其驱动因素不仅包括肿瘤与骨之间的相互作用,也包括骨髓内显著的免疫重塑。髓源性抑制细胞(MDSC),包括多形核(PMN-MDSC)和单核细胞(M-MDSC)亚群,日益被视为这一过程的核心效应细胞;它们整合炎症信号、代谢线索和基质信号,形成免疫抑制并支持肿瘤在骨骼中定植。本综述综合现有证据,指出骨转移会将骨髓转变为“MDSC扩增器”:血管和骨内膜生态位、富含CXCL12的基质区室、缺氧以及脂肪细胞来源脂质共同促进MDSC募集、持续存在和功能成熟。
我们讨论MDSC在骨内主要的免疫抑制程序(例如精氨酸酶1活性、活性氧/氮物质生成以及检查点配体表达),以及这些机制如何汇聚并损害细胞毒性T细胞和NK细胞应答,同时促使调节性T细胞占优势。
重要的是,骨髓是造血器官,骨病灶还可通过髓系细胞外溢产生全身性影响,为骨转移占主导的疾病对免疫检查点阻断应答降低提供机制依据。随后,我们评估骨转移背景下靶向MDSC的药物策略,包括阻断细胞迁移(如CCR2/CXCR2轴)、清除或重编程免疫抑制性髓系状态(如靶向STAT3的策略、分化治疗),以及破坏骨吸收反馈环路(如抑制NF-κB受体活化因子配体[RANKL]和使用双膦酸盐);同时强调通过合理联合和排序治疗限制骨髓毒性。
最后,我们介绍新兴单细胞和空间分析工具,这些工具可解析骨特异性MDSC异质性,并指导由生物标志物驱动、以机制为依据的治疗开发。
Bone metastasis remains a major cause of morbidity in advanced cancer, driven not only by tumor-bone crosstalk but also by profound immune remodeling within the marrow. Myeloid-derived suppressor cells (MDSCs), including polymorphonuclear (PMN-MDSC) and monocytic (M-MDSC) subsets, are increasingly recognized as central effectors of this process, integrating inflammatory signals with metabolic and stromal cues to enforce immune suppression and support skeletal colonization.
In this review, we synthesize current evidence that bone metastases transform the bone marrow into an "MDSC amplifier," where vascular and endosteal niches, CXCL12-rich stromal compartments, hypoxia, and adipocyte-derived lipids collectively promote MDSC recruitment, persistence, and functional maturation.
We discuss the dominant suppressive programs deployed by MDSCs in bone (e. g. , arginase-1 activity, reactive oxygen/nitrogen species, and checkpoint ligand expression), and how these mechanisms converge to impair cytotoxic T-cell and NK-cell responses while fostering regulatory T-cell dominance.
Importantly, because the marrow is a hematopoietic organ, bone lesions can also generate systemic consequences through myeloid spillover, providing a mechanistic basis for reduced responsiveness to immune checkpoint blockade in bone-dominant disease.
We then evaluate pharmacologic strategies to target MDSCs in the context of bone metastasis, including approaches that block trafficking (e. g. , CCR2/CXCR2 axes), deplete or reprogram suppressive myeloid states (e. g. , STAT3-directed strategies, differentiation therapy), and disrupt bone-resorptive feedback loops (e. g. , receptor activator of NF- B ligand (RANKL) inhibition and bisphosphonates), emphasizing rational combinations and sequencing to limit marrow toxicity.
Finally, we highlight emerging single-cell and spatial profiling tools that can resolve bone-specific heterogeneity in MDSCs and guide biomarker-driven, mechanism-informed therapeutic development.
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