Univ. Grenoble Alpes, CNRS, CEA, Institut de Biologie Structurale (IBS), 71, Avenue des Martyrs, 38044, Grenoble, France.
Sanofi Research & Development, 94403, Vitry-sur-Seine, France.
J Biomol NMR. 2024 Jun;78(2):73-86. doi: 10.1007/s10858-023-00433-4. Epub 2024 Mar 28.
Monoclonal antibodies (mAbs) are biotherapeutics that have achieved outstanding success in treating many life-threatening and chronic diseases. The recognition of an antigen is mediated by the fragment antigen binding (Fab) regions composed by four different disulfide bridge-linked immunoglobulin domains. NMR is a powerful method to assess the integrity, the structure and interaction of Fabs, but site specific analysis has been so far hampered by the size of the Fabs and the lack of approaches to produce isotopically labeled samples. We proposed here an efficient in vitro method to produce [N, C, H]-labeled Fabs enabling high resolution NMR investigations of these powerful therapeutics. As an open system, the cell-free expression mode enables fine-tuned control of the redox potential in presence of disulfide bond isomerase to enhance the formation of native disulfide bonds. Moreover, inhibition of transaminases in the S30 cell-free extract offers the opportunity to produce perdeuterated Fab samples directly in HO medium, without the need for a time-consuming and inefficient refolding process. This specific protocol was applied to produce an optimally labeled sample of a therapeutic Fab, enabling the sequential assignment of H, N, C', C, C resonances of a full-length Fab. 90% of the backbone resonances of a Fab domain directed against the human LAMP1 glycoprotein were assigned successfully, opening new opportunities to study, at atomic resolution, Fabs' higher order structures, dynamics and interactions, using solution-state NMR.
单克隆抗体 (mAbs) 是一种生物疗法,在治疗许多危及生命和慢性疾病方面取得了巨大成功。抗原的识别是由由四个不同的二硫键连接的免疫球蛋白结构域组成的片段抗原结合 (Fab) 区域介导的。NMR 是评估 Fab 的完整性、结构和相互作用的强大方法,但由于 Fab 的大小和缺乏产生同位素标记样品的方法,因此迄今为止,对其进行位点特异性分析受到了阻碍。我们在这里提出了一种有效的体外方法来生产 [N、C、H]-标记的 Fab,从而能够对这些强大的治疗药物进行高分辨率 NMR 研究。作为一个开放系统,无细胞表达模式能够在存在二硫键异构酶的情况下精细控制氧化还原电位,以增强天然二硫键的形成。此外,在 S30 无细胞提取物中抑制转氨酶为直接在 HO 培养基中生产完全氘代 Fab 样品提供了机会,而无需耗时且低效的复性过程。该特定方案应用于生产治疗 Fab 的最佳标记样品,从而能够对全长 Fab 的 H、N、C'、C、C 共振进行顺序分配。针对人 LAMP1 糖蛋白的 Fab 结构域的 90%的骨架共振被成功分配,为使用溶液 NMR 以原子分辨率研究 Fab 的高级结构、动力学和相互作用开辟了新的机会。