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:Cellular pharmacology of fludarabine: molecular determinants of transport and metabolism.
磷酸氟达拉滨是一种抗代谢药物,是血液学和肿瘤学治疗的基石,其在血液恶性肿瘤、干细胞移植预处理及CAR-T 细胞治疗中的临床应用正在不断扩展。
磷酸氟达拉滨是一种抗代谢药物,也是血液学和肿瘤学治疗的基石,其临床应用不断扩展至血液系统恶性肿瘤、干细胞移植预处理和CAR-T 细胞治疗。尽管广泛使用,患者间药代动力学差异显著,药物暴露量最高可相差14.5倍。暴露不足或过量均与治疗失败和非复发死亡率直接相关,凸显个体化给药策略的关键必要性。氟达拉滨的治疗效果由复杂的转运和代谢过程决定。细胞摄取主要由人平衡型核苷转运体(hENT1、hENT2)和浓缩型核苷转运体(hCNT2、hCNT3)介导。进入细胞后,脱氧胞苷激酶催化限速磷酸化步骤,将氟达拉滨转化为具有药理活性的三磷酸形式,后者抑制DNA合成和修复,最终导致细胞毒作用。氟达拉滨通过多条途径清除:胞质5'-核苷酸酶II和CD73介导去磷酸化,而UDP-葡萄糖醛酸转移酶(尤其是UGT2B17)催化葡萄糖醛酸化清除。乳腺癌耐药蛋白(BCRP/ABCG2)是主要外排转运体;氟达拉滨与P-糖蛋白及其他主要多药耐药相关蛋白的相互作用较少。本综述综合当前对氟达拉滨细胞药理学的认识,为识别指导个体化医疗的生物标志物提供框架,以优化氟达拉滨治疗和结局。
Fludarabine monophosphate is an antimetabolite and a cornerstone of hematology and oncology treatments, with expanding clinical applications in hematological malignancies, stem cell transplantation conditioning, and chimeric antigen receptor T-cell (CAR-T) therapy. Despite widespread clinical use, there is substantial interpatient pharmacokinetic variability with up to 14.5-fold differences in drug exposure. Suboptimal exposures (both under- and overexposure) correlate directly with both treatment failure and non-relapse mortality, emphasizing the critical need for personalized dosing strategies. The therapeutic efficacy of fludarabine is determined by complex transport and metabolic processes. Cellular uptake is mediated primarily by human equilibrative (hENT1, hENT2) and concentrative nucleoside transporters (hCNT2, hCNT3). Once intracellular, deoxycytidine kinase catalyzes the rate-limiting phosphorylation step, converting fludarabine to its pharmacologically active triphosphate, which inhibits DNA synthesis and repair, ultimately driving cytotoxicity. The elimination mechanisms of fludarabine involve multiple pathways: cytoplasmic 5'-nucleotidase II and CD73-mediated dephosphorylation, while UDP-glucuronosyltransferases (particularly UGT2B17) catalyze glucuronidation-based elimination. The breast cancer resistance protein (BCRP/ ABCG2 ) represents the principal efflux transporter, whereas fludarabine shows minimal interaction with P-glycoprotein and other major multidrug resistance-associated proteins. This review synthesizes current understanding of fludarabine's cellular pharmacology, providing a framework for identifying biomarkers to guide personalized medicine approaches and to optimize fludarabine therapy and treatment outcomes.
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