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:Isolation of Novel Fully Human Single-Domain Antibodies Targeting GUCY2C from a Heavy-Chain-Only Transgenic Mouse Platform.
Isolation of Novel Fully Human Single-Domain Antibodies Targeting GUCY2C from a Heavy-Chain-Only Transgenic Mouse Platform.
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引言传统的天然单域抗体(sdAbs)主要来源于骆驼科动物和鲨鱼。然而,这些物种体型大、繁殖慢,限制了它们在抗体开发中的广泛应用。
本研究采用全人源重链抗体小鼠(huNano mouse)平台和快速高效的制备流程,成功开发了靶向肿瘤抗原鸟苷酸环化酶C(GC-C)的全人源重链抗体(HcAbs)。这些sdAbs为后续基于GC-C的CAR-T 疗法和双特异性抗体药物开发提供了高质量的候选分子。方法用GC-C重组蛋白免疫全人源huNano小鼠。通过噬菌体展示技术筛选特异性结合GC-C的sdAb序列,随后克隆到哺乳动物表达载体中进行表达和纯化。采用ELISA、流式细胞术(FACS)、生物膜层干涉技术(BLI)和体积排阻色谱(SEC-HPLC)等多种方法系统评价抗体的结合活性、亲和力、热稳定性和单体分散性。结果成功获得多个特异性识别GC-C的sdAbs,并表现出强结合亲和力。经一步纯化后,大多数抗体的单体纯度超过95%,聚集体含量低于5%。纳米抗体表现出良好的热稳定性,熔解温度(Tm)和聚集起始温度(Tagg)均落在60-68 C范围内,展现出优异的药物开发潜力。结论这些结果验证了huNano小鼠平台高效生产高质量全人源sdAbs的能力。
IntroductionTraditional natural single-domain antibodies(sdAbs) are primarily derived from camelids and sharks.
However, the large size and slow reproduction of these species limit their widespread application in antibody development. In this study, we employed a fully human heavy-chain-only antibody mouse ( huNano mouse ) platform and a rapid, efficient preparation process to successfully develop fully human heavy-chain-only antibodies(HcAbs) targeting the tumor antigen guanylyl cyclase C (GC-C). These sdAbs provide high-quality candidate molecules for subsequent GC-C-based CAR-T therapy and bispecific antibody drug development. MethodsFully huNano mice were immunized with GC-C recombinant protein. SdAb sequences specifically binding to GC-C were selected via phage display technology and subsequently cloned into mammalian expression vectors for expression and purification.
The binding activity, affinity, thermal stability, and monomeric dispersion of the antibodies were systematically evaluated using various methods, including ELISA, flow cytometry (FACS), biolayer interferometry (BLI), and size-exclusion chromatography (SEC-HPLC). ResultsMultiple sdAbs with specific recognition of GC-C were successfully obtained and exhibited strong binding affinities.
After one-step purification, the monomeric purity of most antibodies exceeded 95%, with aggregate content below 5%. The nanobodies exhibited good thermal stability, with melting temperature (Tm) and aggregation onset temperature (Tagg) both falling within the range of 60-68 C, demonstrating excellent drug development potential. ConclusionThese results validate the capability of the huNano mouse platform to efficiently produce high-quality, fully human sdAbs.
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