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整合癌症患者 CAR-T 细胞亚群差异细胞动力学与免疫表型的多尺度机制建模框架的构建

英文原题:Development of a multiscale mechanistic modeling framework integrating differential cellular kinetics of CAR T-cell subsets and immunophenotypes in cancer patients.

查看英文原题

Development of a multiscale mechanistic modeling framework integrating differential cellular kinetics of CAR T-cell subsets and immunophenotypes in cancer patients.

PubMed 2023/08/18(内容时间) CPT Pharmacometrics Syst Pharmacol Q3 · IF 2.8(JCR 2025)

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中文摘要

输注前产品中的嵌合抗原受体(CAR)T细胞亚群和免疫表型组成,以及输注后的纵向变化,预计会影响CAR-T 细胞的扩增、持久性和临床结局。

在此,我们通过利用已发表的来自两种亲和力变体(FMC63和CAT19 scFv)抗CD19 CAR-T 细胞的临床前和临床数据集,逐步改进我们先前描述的细胞动力学-药效学(CK-PD)模型,以纳入CAR-T 细胞产品相关属性。在步骤1中,使用统一的细胞水平PD模型同时表征两种CAR-T 细胞在不同效靶比下对CD19+细胞系的体外杀伤数据集。在步骤2中,通过整合来自癌症患者中两种生物分析测量(定量聚合酶链反应和流式细胞术)的CK数据集,开发了抗CD19 CAR-T 细胞的增强CK-PD模型。该模型描述了CAR-T 细胞亚群体内扩增特性的差异。与CAR+CD4+ T细胞相比,CAR+CD8+细胞的估计扩增速率常数约高1.12倍。在步骤3中,该模型被扩展以表征四种免疫表型CAR-T 细胞群体的处置,包括干细胞记忆、中央记忆、效应记忆和效应细胞。该模型充分表征了急性淋巴细胞白血病儿科患者抗CD19 CAR-T 细胞输注后免疫表型的纵向变化。输注前产品中的多克隆性被确定为影响免疫表型分化的分类协变量。未来,该模型可先验地用于优化CAR-T 细胞输注产品的组成,并进一步理解患者中的CK-PD关系。

展开英文摘要原文

Chimeric antigen receptor (CAR) T-cell subsets and immunophenotypic composition of the pre-infusion product, as well as their longitudinal changes following infusion, are expected to affect CAR T-cell expansion, persistence, and clinical outcomes.

Herein, we sequentially evolved our previously described cellular kinetic-pharmacodynamic (CK-PD) model to incorporate CAR T-cell product-associated attributes by utilizing published preclinical and clinical datasets from two affinity variants (FMC63 and CAT19 scFv) anti-CD19 CAR T-cells. In step 1, a unified cell-level PD model was used to simultaneously characterize the in vitro killing datasets of two CAR T-cells against CD19+ cell lines at varying effector:target ratios. In step 2, an augmented CK-PD model for anti-CD19 CAR T-cells was developed, by integrating CK dataset(s) from two bioanalytical measurements (quantitative polymerase chain reaction and flow cytometry) in patients with cancer. The model described the differential in vivo expansion properties of CAR T-cell subsets.

The estimated expansion rate constant was ~1. 12-fold higher for CAR+CD8+ cells in comparison to CAR+CD4+ T-cells. In step 3, the model was extended to characterize the disposition of four immunophenotypic populations of CAR T-cells, including stem-cell memory, central memory, effector memory, and effector cells.

The model adequately characterized the longitudinal changes in immunophenotypes post anti-CD19 CAR T-cell infusion in pediatric patients with acute lymphocytic leukemia. Polyclonality in the pre-infusion product was identified as a categorical covariate influencing differentiation of immunophenotypes. In the future, this model could be leveraged a priori toward optimizing the composition of CAR T-cell infusion product, and further understand the CK-PD relationship in patients.

论文信息

作者
Salem AM、Mugundu GM、Singh AP
单位
Clinical Pharmacology and Modeling, Precision and Translational Medicine, Oncology Cell Therapy and Therapeutic Area Unit, Takeda Pharmaceuticals, Cambridge, Massachusetts, USA.United Kingdom
文献类型
非美国政府资助研究
期刊
CPT: pharmacometrics & systems pharmacology2023 Sep
原文标识
PubMed 37448297 · DOI 10.1002/psp4.13009