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:Molecular Pathogenesis and Targeted Treatment of Richter Transformation.
Richter转化(RT)是慢性淋巴细胞白血病/小淋巴细胞淋巴瘤(CLL/SLL)一种罕见但高度致命的演变,最常表现为弥漫性大B细胞淋巴瘤(DLBCL)。
Richter转化(RT)是慢性淋巴细胞白血病/小淋巴细胞淋巴瘤(CLL/SLL)一种罕见但高度致命的演变,最常表现为弥漫性大B细胞淋巴瘤(DLBCL)。尽管CLL的治疗取得了进展,但DLBCL-RT仍以快速进展、深度治疗难治和常规化学免疫治疗下生存期短为特征,凸显了对精细化生物学和治疗框架的需求。RT的一个决定性特征是克隆相关性:大多数病例通过先前存在的CLL克隆的线性或分支演化而来,与克隆无关的病例相比预后更差,后者类似于de novo DLBCL。近期多组学数据进一步表明,克隆相关性RT通常起源于微小的、转化倾向性亚克隆,这些亚克隆在临床出现前数年即可被检测到,将RT从晚期随机事件转变为早期建立的演化轨迹。在转化时,TP53、CDKN2A/B、NOTCH1和MYC的反复遗传学病变与B细胞受体相关程序、表观遗传重配置以及向OXPHOS和mTOR驱动状态的代谢重编程协同作用,共同促进基因组不稳定性和侵袭性生长。与此同时,RT在深度免疫抑制的微环境中发展,其特征为表达PD-1的恶性B细胞、富含PD-L1的髓系龛、耗竭T细胞、扩增的调节性T细胞以及M2偏斜的巨噬细胞,这些细胞通过冗余的检查点和细胞因子网络相互连接。治疗策略正在迅速发展,包括通路抑制剂、免疫检查点阻断、T细胞衔接双特异性抗体、CAR-T疗法和抗体药物偶联物。本综述整合了当前对RT发病机制、免疫逃逸及新兴疗法的见解,重点阐述了生物标志物驱动的患者分层、合理联合治疗以及早期干预易转化疾病的机遇。
Richter transformation (RT) represents a rare but highly lethal evolution of chronic lymphocytic leukemia/small lymphocytic lymphoma (CLL/SLL), most frequently manifesting as diffuse large B-cell lymphoma (DLBCL). Despite therapeutic advances in CLL, DLBCL-RT remains characterized by rapid progression, profound treatment refractoriness, and short survival with conventional chemoimmunotherapy, underscoring the need for a refined biological and therapeutic framework. A defining feature of RT is clonal relatedness: most cases arise through linear or branched evolution of the antecedent CLL clone and carry an inferior prognosis compared with clonally unrelated cases that resemble de novo DLBCL. Recent multi-omic data further indicate that clonally related RT commonly originates from minute, transformation-primed subclones detectable years before clinical emergence, shifting RT from a late stochastic event to an early-established evolutionary trajectory. At transformation, recurrent genetic lesions of TP53 , CDKN2A / B , NOTCH1 , and MYC cooperate with B-cell receptor-associated programs, epigenetic reconfiguration, and metabolic rewiring toward OXPHOS- and mTOR-driven states, collectively promoting genomic instability and aggressive growth. In parallel, RT develops within a profoundly immunosuppressive microenvironment marked by PD-1-expressing malignant B cells, PD-L1-rich myeloid niches, exhausted T cells, expanded regulatory T cells, and M2-skewed macrophages interconnected by redundant checkpoint and cytokine networks. Therapeutic strategies are rapidly evolving, including pathway inhibitors, immune checkpoint blockade, T-cell-engaging bispecific antibodies, CAR-T therapies, and antibody-drug conjugates. This review integrates current insights into RT pathogenesis, immune escape, and emerging therapies, highlighting opportunities for biomarker-driven patient stratification, rational combinations, and earlier interception of transformation-prone disease.
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