CAR-T(CAR-T)细胞疗法在非肿瘤性疾病中的应用
Chimeric antigen receptor T (CAR-T) cell therapy in non-oncological diseases.
CAR-T(CAR-T)细胞在血液系统恶性肿瘤中的应用推动了这种免疫治疗形式的显著进展。
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Investigating the Influence of Covariates on Axicabtagene Ciloleucel (axi-cel) Kinetics in Patients with Non-Hodgkin's Lymphoma.
Investigating the Influence of Covariates on Axicabtagene Ciloleucel (axi-cel) Kinetics in Patients with Non-Hodgkin's Lymphoma.
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本研究中考虑的任何协变量均未发现能显著且实质性地预测 axi-cel 的暴露特征。托珠单抗和类固醇的使用与最大浓度相关,但它们是被动用于治疗与较高最大浓度相关的毒性反应。进一步的 CAR-T 动力学分析应考虑其他因素,以解释观察到的细胞动力学变异性,或帮助建立剂量-暴露关系。
Axicabtagene ciloleucel(axi-cel,Yescarta)是一种自体抗CD19嵌合抗原受体(CAR)T细胞疗法,获批用于复发/难治性非霍奇金淋巴瘤患者。在CAR-T 疗法中已观察到显著的个体间细胞动力学变异,而影响CAR-T 细胞动力学的因素仍知之甚少。本研究报道了axi-cel在复发/难治性非霍奇金淋巴瘤患者中的群体细胞动力学模型,并探讨了协变量对CAR-T 暴露早期和晚期动力学阶段的影响。
一个针对axi-cel的群体细胞动力学模型(NONMEM 7.4版)基于410例患者(2050个转基因观测值)的数据建立,这些患者为非霍奇金淋巴瘤患者(ZUMA-1、ZUMA-5和ZUMA-7临床研究),接受单次静脉输注2×10^6个抗CD19 CAR+ T细胞/kg。研究评估了大量协变量以解析CAR-T 细胞动力学的变异性,包括患者特征、产品特征和疾病类型。
Axi-cel 细胞动力学可由细胞生长动力学的分段模型很好地描述,该模型以指数增长期开始,随后是三相下降期,包括长期持续期。最终保留的细胞动力学模型将 CAR-T 细胞生产过程中的体外倍增时间和输注的 T 细胞总数作为影响增长期持续时间的协变量,然而这并未显著影响最大浓度、前 28 天浓度-时间曲线下面积或长期持续。观察到最大浓度与接受托珠单抗和/或糖皮质激素的概率之间存在统计学显著关系。
Axicabtagene ciloleucel (axi-cel, Yescarta) is an autologous, anti-CD19, chimeric antigen receptor (CAR) T-cell therapy approved for patients with relapsed and refractory non-Hodgkin's lymphoma. Substantial inter-individual variability in cellular kinetics has been observed with CAR-T therapies and factors impacting CAR-T cellular kinetics remain poorly understood. This work reports a population cellular kinetic model of axi-cel in relapsed and patients with refractory non-Hodgkin's lymphoma and investigated the impact of covariates on early and late kinetic phases of CAR-T exposure.
A population cellular kinetic model (NONMEM version 7.4) for axi-cel was developed using data from 410 patients (2050 transgene observations) after a single intravenous infusion of 2 10 6 anti-CD19 CAR+ T cells/kg in patients with non-Hodgkin's lymphoma (ZUMA-1, ZUMA-5, and ZUMA-7 clinical studies). A large panel of covariates was assessed to decipher the variability of CAR-T cell kinetics including patient characteristics, product characteristics, and disease types.
Axi-cel cellular kinetics were well described by a piecewise model of cellular growth kinetics characterized by an exponential growth phase followed by a triphasic decline phase including a long-term persistence phase. The final cellular kinetic model retained in vitro doubling time during CAR-T cell manufacturing and total number of T cells infused as covariates impacting the duration of the growth phase, which, however, did not substantially influence maximum concentration, area under the concentration-time curve over the first 28 days, or long-term persistence. A statistically significant relationship was observed between maximum concentration and the probability to receive tocilizumab and/or corticosteroids.
No covariates considered in this study were found to significantly and substantially predict the exposure profile of axi-cel. Tocilizumab and steroid use were related to maximum concentration, but they were used reactively to treat toxicities that are associated with a higher maximum concentration. Further CAR-T kinetic analyses should consider additional factors to explain the observed variability in cellular kinetics or help establish a dose-exposure relationship. CLINICAL TRIAL REGISTRATION: NCT02348216 (ZUMA-1), NCT03105336 (ZUMA-5), and NCT03391466 (ZUMA-7).
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