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:Large-cohort humanized NPI mice reconstituted with CD34(+) hematopoietic stem cells are feasible for evaluating preclinical cancer immunotherapy.
Large-cohort humanized NPI mice reconstituted with CD34(+) hematopoietic stem cells are feasible for evaluating preclinical cancer immunotherapy.
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肿瘤免疫治疗已在多种癌症中取得了令人瞩目的疗效,但仅有小部分患者从中获益,部分患者甚至出现了严重毒性。迫切需要开发一种可行的大队列人源化小鼠模型,以评估肿瘤免疫治疗的临床前疗效和安全性。
此外,开发肿瘤免疫治疗与其他治疗之间潜在有效的联合治疗,也需要人源化小鼠模型来充分模拟临床实际情况。在此,我们建立了一种人源化小鼠模型,其移植的人CD34+ HSCs数量较以往更少,随后评估了该人源化小鼠模型的重建效率和人免疫细胞谱。
同时,该人源化小鼠模型被用于评估肿瘤免疫治疗的临床前疗效和安全性。对于每一批CD34+ HSCs人源化小鼠模型,均建立了一个外周血中人CD45+细胞超过25%的相对较大队列。该人源化小鼠模型能够有效重建人固有免疫和适应性免疫细胞。该人源化小鼠模型支持患者来源异种移植肿瘤的生长以及PD-1+人T细胞的肿瘤浸润。
此外,在该人源化小鼠模型中可监测检查点阻断治疗的疗效、肿瘤浸润T细胞的再激活以及副作用。该人源化小鼠模型中的人T细胞成功进行了CD19-CAR工程化改造。CD19 CAR-T 细胞在该人源化小鼠模型体内能够有效清除B细胞并抑制急性淋巴细胞白血病的肿瘤生长。该人源化小鼠模型还可用于证明双特异性抗体的疗效,如抗CD19/CD3。
总体而言,我们的工作提供了一种可行的大队列人源化小鼠模型,用于评估多种癌症免疫治疗方法,包括检查点抑制剂、过继性细胞疗法和双特异性抗体疗法,并证明来自该人源化小鼠模型的人T细胞在体外和体内均具有抗肿瘤活性。
Cancer immunotherapy has achieved impressive therapeutic effects in many cancers, while only a small subset of patients benefit from it and some patients even have experienced severe toxicity. It is urgent to develop a feasible large-cohort humanized mouse model to evaluate the pre-clinical efficacy and safety of cancer immunotherapy.
Furthermore, developing potentially effective combination therapy between cancer immunotherapy and other therapies also needs humanized mouse model to adequately mimic clinical actual setting.
Herein, we established a humanized mouse model engrafted with less human CD34 + HSCs than ever before and then evaluated reconstitution efficiency and the profiles of human immune cells in this humanized mouse model. Also, this humanized mouse model was used to evaluate the preclinical efficacy and safety of cancer immunotherapy.
For each batch of CD34 + HSCs humanized mouse model, a relatively-large cohort with over 25% human CD45 + cells in peripheral blood was established. This humanized mouse model could efficiently reconstitute human innate and adaptive immune cells. This humanized mouse model supported patient-derived xenograft tumor growth and tumor infiltration of PD-1 + human T cells.
Furthermore, therapeutic efficacy, re-activation of tumor-infiltrated T cells, and side effects of checkpoint blockade therapy could be monitored in this humanized mouse model. Human T cells from this humanized mouse model were successfully engineered with CD19-CAR. CD19 CAR-T cells could effectively deplete B cells and suppress tumor growth of acute lymphoblastic leukemia in vivo in this humanized mouse model. This humanized mouse model also could be used to demonstrate the efficacy of bispecific antibodies, such as anti-CD19/CD3.
Overall, our work provides a feasible large-cohort humanized mouse model for evaluating a variety of cancer immunotherapy approaches including checkpoint inhibitors, adoptive cell therapy, and bispecific antibody therapy, and demonstrates that human T cells from this humanized mouse model possess anti-tumor activities in vitro and in vivo.
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