决定异体 CAR T 细胞排斥与扩增的细胞和分子机制
Cellular and molecular mechanisms determining allogeneic CAR T cell rejection and expansion.
我们评估了11例接受单一批次cemacabtagene ansegedleucel(cema-cel)治疗的大B细胞淋巴瘤患者,cemacabtagene ansegedleucel是一种异体抗CD19 CAR T产品。
英文原题:The paradoxical role of stem cells in osteosarcoma: from pathogenesis to therapeutic breakthroughs.
The paradoxical role of stem cells in osteosarcoma: from pathogenesis to therapeutic breakthroughs.
骨肉瘤(OS)是青少年中最常见的原发性恶性骨肿瘤,具有高转移潜能和治疗耐药性。
骨肉瘤(OS)是青少年中最常见的原发性恶性骨肿瘤,具有较强转移潜能和治疗耐药性,因此晚期病例即使接受多模式治疗,预后仍差。本综述综合讨论干细胞在OS发病机制和治疗创新中的双重作用。癌症干细胞(CSC)通过Wnt/β-catenin、Notch和Hedgehog等信号通路失调驱动肿瘤起始、进展和化疗耐药;CD133和CXCR4等关键标志物有助于维持干性和促进转移。与此同时,间充质干细胞(MSC)对OS进展具有复杂作用:其肿瘤归巢能力有助于靶向递送药物(如IDD-1040-紫杉醇复合物)和实施免疫调节,但MSC来源因子(如TGF-β)也可能促进癌症相关成纤维细胞分化和免疫逃逸。以缺氧诱导HIF-1活化、代谢重编程和M2巨噬细胞极化为特征的免疫抑制性肿瘤微环境(TME),进一步增强CSC存活能力及治疗耐药。新兴策略包括靶向CSC药物(AZD1080、DNMT抑制剂/HDAC抑制剂)、CRISPR/Cas9工程化CD133靶向CAR-T细胞及MSC介导的溶瘤病毒递送,均显示临床前应用潜力。然而,仍存在关键挑战:肿瘤内CSC异质性限制靶向治疗效果;MSC功能可塑性可能通过细胞融合或批次差异促进肿瘤;肺部滞留导致细胞归巢效率低,降低治疗递送。未来需采用生物标志物指导的联合策略、优化MSC给药途径(如动脉内注射),并整合多组学分析,以突破转化障碍。解决这些问题将推动OS个体化、以干细胞为核心的治疗发展。
Osteosarcoma (OS), the most prevalent primary malignant bone tumor in adolescents, exhibits a high metastatic potential and resistance to therapy. This characteristic results in a dismal prognosis in advanced cases even following multimodal therapies. This review synthesizes the dual roles of stem cells in OS pathogenesis and therapeutic innovation. Cancer stem cells (CSCs) drive tumor initiation, progression, and chemoresistance through dysregulated molecular pathways that include Wnt/ -catenin, Notch, and Hedgehog signaling, with key markers such as CD133 and CXCR4 contributing to stemness maintenance and metastasis. Concurrently, mesenchymal stem cells (MSCs) paradoxically influence OS progression. Although their tumor-homing capacity enables targeted drug delivery (e.g., IDD-1040-paclitaxel complexes) and immunomodulation, MSC-derived factors like TGF- can promote cancer-associated fibroblast differentiation and immune evasion. The immunosuppressive tumor microenvironment (TME), characterized by hypoxia-induced HIF-1 activation, metabolic reprogramming, and M2 macrophage polarization, further facilitates CSC resilience and therapy resistance. Emerging strategies-including CSCs-targeted agents (AZD1080, DNMTi/HDACi), CRISPR/Cas9-engineered CD133-directed CAR-T cells, and MSC-mediated delivery of oncolytic viruses-show preclinical promise in overcoming these barriers. However, critical challenges persist: intratumoral CSC heterogeneity limits targeted therapy efficacy; MSC functional plasticity risks tumor promotion via fusion or batch variations; and inefficient cell homing due to pulmonary entrapment reduces therapeutic delivery. Future directions necessitate biomarker-guided combinatorial approaches, optimized MSC administration routes (e.g., intra-arterial injection), and integrated multi-omics profiling to address translational bottlenecks. Resolving these issues will advance personalized stem cell-focused therapies for OS.
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