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基于机制数据的多尺度定量系统药理学建模框架助力实体瘤 CAR-T 治疗的临床转化与疗效评估

英文原题:Mechanistic data-informed multiscale quantitative systems pharmacology modeling framework enables the clinical translation and efficacy assessment of CAR-T therapy in solid tumors.

PubMed 2025/10/09(内容时间) J Immunother Cancer Q1 · IF 11.7(JCR 2025)

研究概要

我们的转化型 QSP 平台提供了一条创新路径,用于整合多尺度知识并为新型靶向实体瘤的 CAR-T 疗法的临床决策提供依据。

中文摘要

背景:嵌合抗原受体(CAR)T细胞疗法是一种创新且可能具有革命性的癌症治疗方式。尽管其治疗血液癌症十分成功,但治疗实体瘤的效果显著较低。此外,由于CAR-T细胞具有独特的“活细胞”属性,且患者病理生理差异较大,将实体瘤CAR-T疗法从临床前研究转化到临床应用仍具挑战。方法:我们开发了多尺度定量系统药理学(QSP)模型,以促进实体瘤CAR-T疗法的临床转化。该机制模型整合影响CAR-T细胞命运和抗肿瘤细胞毒作用的关键生物学特征:从细胞层面的CAR-抗原相互作用和活化,到体内CAR-T分布、增殖和表型转变,再到临床层面的患者肿瘤异质性及应答差异。模型通过多模态实验数据进行校准和验证,包括已发表的多种CAR-T产品临床前及临床数据,以及新型靶向claudin 18.2的CAR-T产品LB1908原始临床前数据。结果:我们展示了该框架在促进临床转化及刻画不同实体瘤靶向CAR-T疗法的配对细胞动力学-细胞毒性应答方面的普遍应用价值。作为示例,我们生成基于模型的虚拟患者,并前瞻性模拟不同给药策略下靶向claudin 18.2的CAR-T疗法应答,包括分步递增给药和便捷的固定剂量方案,以为未来临床试验设计提供参考。结论:我们的转化QSP平台提供了一条创新路径,可整合多尺度知识并为新型实体瘤靶向CAR-T疗法的临床决策提供依据。

展开英文摘要原文

BACKGROUND: Chimeric antigen receptor (CAR)-T cell therapy represents an innovative and potentially revolutionary modality in cancer treatment. Despite their great success in treating blood cancers, CAR-T therapies exhibit significantly lower effectiveness in treating solid tumors. Moreover, the preclinical-to-clinical translation of CAR-T therapies targeting solid tumors is still a challenging task because of their unique "live cell" nature and the substantial variability in patients' pathophysiology. METHODS: We have developed a multiscale quantitative systems pharmacology (QSP) model to facilitate the clinical translation of CAR-T therapies in solid tumors. Our mechanistic modeling framework integrates the essential biological features that impact CAR-T cell fate and antitumor cytotoxicity, from cell-level CAR-antigen interaction and activation, to in vivo CAR-T biodistribution, proliferation and phenotype transition, and finally to clinical-level patient tumor heterogeneity and response variability. This modeling framework has been calibrated and validated by multimodal experimental data including published preclinical and clinical data of various CAR-T products and original preclinical data of a novel claudin18.2-targeted CAR-T product LB1908. RESULTS: We demonstrated the general utility of this framework in facilitating clinical translation and characterizing the paired cellular kinetics-cytotoxicity response of different antigen-targeting solid tumor CAR-T cell therapies. As an example, we generated model-based virtual patients and prospectively simulated the response to claudin18.2-targeted CAR-T therapies under different dosing strategies, including step-fractionated dosing and convenient flat dose-based regimens, to inform future clinical trial implementation. CONCLUSIONS: Our translational QSP platform offers an innovative pathway to integrate multiscale knowledge and inform clinical decision-making of novel solid tumor-targeting CAR-T therapies.

论文信息

作者
Yang S、Wang W、Rao Q、Xu Y、Zhang S、Qu Y、Zhuang Q、Mao J
第一作者单位
School of Pharmacy, Nanjing Medical University, Nanjing, Jiangsu, China.China
通讯作者单位
School of Pharmacy, Nanjing Medical University, Nanjing, Jiangsu, China chenzhao22@njmu.edu.cn da.xu@legendbiotech.cn.China
期刊
Journal for immunotherapy of cancer2025 Oct 9
原文标识
PubMed 41067881 · DOI 10.1136/jitc-2025-012331