决定异体 CAR T 细胞排斥与扩增的细胞和分子机制
Cellular and molecular mechanisms determining allogeneic CAR T cell rejection and expansion.
我们评估了11例接受单一批次cemacabtagene ansegedleucel(cema-cel)治疗的大B细胞淋巴瘤患者,cemacabtagene ansegedleucel是一种异体抗CD19 CAR T产品。
英文原题:Efficient discovery of an agonistic anti-OX40 nanobody by epitope-directed approach to address enrichment-driven epitope bias.
本研究提出了一种创新的表位导向方法,通过有效规避富集驱动的表位偏倚,极大地加速了功能性激动型纳米抗体的发现。我们的方法及工程化多价抗OX40纳米抗体为推动癌症免疫治疗策略提供了强大的平台。
传统的抗体发现方法未考虑表位免疫原性、PCR 扩增偏倚或蛋白表达效率等富集驱动的偏倚,可能导致罕见但功能相关的克隆被低估,因此需要在大量优势克隆中进行劳动密集的体外筛选以鉴定激动性抗体。因此,迫切需要高效的激动性抗体筛选方法。OX40 因其在增强 T 细胞活化和存活中的作用,是癌症免疫治疗的一个有前景的靶点。然而,有效的抗 OX40 激动性抗体尚未被开发出来。
我们开发了一种新的筛选策略,包括选择通过针对gp34结合的及未结合的OX40表达细胞进行生物淘选而富集的纳米抗体克隆库、下一代测序以及计算聚类和消减分析,以识别识别配体-受体界面的克隆。代表性的纳米抗体克隆进行了体外验证,包括表位定位、结合亲和力测量和功能评估。此外,我们对选定的纳米抗体进行了工程改造以增强其体内效力。我们还进行了纳米抗体-OX40复合物的结构分析。
我们的表位导向方法有效鉴定出识别功能相关表位的纳米抗体克隆,这些表位不同于主要免疫原性区域。值得注意的是,克隆 Nb479 表现出强效激动活性,与天然配体 gp34 高度相似,具有广泛的 OX40 结合相互作用。Nb479 的三聚化无需交联支架即可实现强效 OX40 激活。将 Nb479 三聚体与抗血清白蛋白纳米抗体偶联后,在体内表现出显著改善的药代动力学,并在接受 CD19 CAR-T 细胞治疗的小鼠模型中增强了抗肿瘤活性。
BACKGROUND: Conventional antibody discovery approaches that do not account for enrichment-driven biases, such as epitope immunogenicity, PCR amplification bias, or protein expression efficiency, may result in under-representation of rare yet functionally relevant clones, necessitating labor-intensive in vitro screening to identify agonistic antibodies among a large number of dominant clones. Thus, efficient screening methods for agonistic antibodies are urgently needed. OX40 is a promising target for cancer immunotherapy due to its role in enhancing T-cell activation and survival. However, effective anti-OX40 agonistic antibodies have not yet been developed. METHODS: We developed a novel screening strategy that involves the selection of nanobody clone pools enriched by biopanning against gp34-engaged and non-engaged OX40-expressing cells, next-generation sequencing, and computational clustering and subtraction analysis to identify clones recognizing the ligand-receptor interface. Representative nanobody clones underwent in vitro validation, including epitope mapping, binding affinity measurements, and functional assessments. Furthermore, we engineered the selected nanobody to enhance its in vivo efficacy. We also performed structural analysis of the nanobody-OX40 complex. RESULTS: Our epitope-directed approach efficiently identified nanobody clones recognizing functionally relevant epitopes distinct from dominant immunogenic regions. Notably, clone Nb479 demonstrated robust agonistic activity, closely mimicking the natural ligand gp34 with extensive OX40-binding interactions. Trimerization of Nb479 facilitated potent OX40 activation without the need for a cross-linking scaffold. Conjugation of the Nb479 trimer with an anti-serum albumin nanobody exhibited significantly improved pharmacokinetics in vivo and enhanced antitumor activity in a mouse model treated with CD19 chimeric antigen receptor T cells. CONCLUSION: This study presents an innovative epitope-directed approach that greatly accelerates the discovery of functionally potent agonistic nanobodies by effectively circumventing enrichment-driven epitope bias. Our approach and engineered multivalent anti-OX40 nanobody offer a powerful platform to advance immunotherapeutic strategies for cancer treatment.
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