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.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Framework humanization optimizes potency of anti-CD72 nanobody CAR-T cells for B-cell malignancies.
Framework humanization optimizes potency of anti-CD72 nanobody CAR-T cells for B-cell malignancies.
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这项工作支持 H24 CD72 nanoCARs 用于难治性 B 细胞恶性肿瘤的转化,揭示了潜在的耐药机制,并意外地证明仅通过框架改造即可提高 nanoCAR 的效力。
约50%的抗CD19 CAR-T 治疗患者会复发,亟需新的免疫治疗靶点。我们近期提出CD72是B细胞恶性肿瘤的有前景靶点,并开发了靶向该抗原的纳米抗体CAR-T(nanoCAR)。与scFv型CAR-T 相比,这种细胞治疗设计研究较少;但随着首种nanoCAR获批用于多发性骨髓瘤,该领域近期受到广泛关注。
我们将此前来源于羊驼的纳米抗体框架区人源化,制备了一系列人源化抗CD72纳米抗体。将这些纳米抗体结合域插入第二代CD72 CAR-T 细胞,并在B细胞急性淋巴细胞白血病和B细胞非霍奇金淋巴瘤的临床前模型中开展体内外评估。将人源化CD72 nanoCAR与亲本(“NbD4”)CD72 nanoCAR及临床获批的CD19靶向CAR-T 产品tisagenlecleucel进行比较。通过RNA测序、流式细胞术和细胞因子分泌谱分析不同CAR构建体之间的差异。随后对亲本NbD4构建体进行亲和力成熟,获得CD72高亲和力结合体,以检测提高CD72结合亲和力能否增强抗肿瘤效力。
为推进临床转化,我们将先前来源于羊驼的纳米抗体框架区人源化,并意外发现克隆“H24”对B细胞肿瘤具有更强效力,包括对CD19 CAR-T 复发患者来源样本的活性。H24对CD72的结合亲和力较全羊驼框架纳米抗体略高,可能是其效力增强的原因之一。然而,进一步进行亲和力成熟(KD<1 nM)并未提高细胞毒性。接受H24 nanoCAR治疗后,体内复发伴随CD72抗原下调,且该变化部分可逆。H24纳米抗体克隆未发现脱靶结合,因此被确定为真正的临床候选药物。
本研究支持将H24 CD72 nanoCAR转化用于难治性B细胞恶性肿瘤,揭示了潜在耐药机制,并意外发现仅改变纳米抗体框架即可提高nanoCAR效力。这些发现可能对未来纳米抗体细胞疗法工程设计具有启示。
Approximately 50% of patients who receive anti-CD19 CAR-T cells relapse, and new immunotherapeutic targets are urgently needed. We recently described CD72 as a promising target in B-cell malignancies and developed nanobody-based CAR-T cells (nanoCARs) against it. This cellular therapy design is understudied compared with scFv-based CAR-T cells, but has recently become of significant interest given the first regulatory approval of a nanoCAR in multiple myeloma.
We humanized our previous nanobody framework regions, derived from llama, to generate a series of humanized anti-CD72 nanobodies. These nanobody binders were inserted into second-generation CD72 CAR-T cells and were evaluated against preclinical models of B cell acute lymphoblastic leukemia and B cell non-Hodgkin's lymphoma in vitro and in vivo. Humanized CD72 nanoCARs were compared with parental ("NbD4") CD72 nanoCARs and the clinically approved CD19-directed CAR-T construct tisangenlecleucel. RNA-sequencing, flow cytometry, and cytokine secretion profiling were used to determine differences between the different CAR constructs. We then used affinity maturation on the parental NbD4 construct to generate high affinity binders against CD72 to test if higher affinity to CD72 improved antitumor potency.
Toward clinical translation, here we humanize our previous nanobody framework regions, derived from llama, and surprisingly discover a clone ("H24") with enhanced potency against B-cell tumors, including patient-derived samples after CD19 CAR-T relapse. Potentially underpinning improved potency, H24 has moderately higher binding affinity to CD72 compared with a fully llama framework. However, further affinity maturation (K D <1 nM) did not lead to improvement in cytotoxicity. After treatment with H24 nanoCARs, in vivo relapse was accompanied by CD72 antigen downregulation which was partially reversible. The H24 nanobody clone was found to have no off-target binding and is therefore designated as a true clinical candidate.
This work supports translation of H24 CD72 nanoCARs for refractory B-cell malignancies, reveals potential mechanisms of resistance, and unexpectedly demonstrates that nanoCAR potency can be improved by framework alterations alone. These findings may have implications for future engineering of nanobody-based cellular therapies.
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