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Cell-free synthesis of functional antibodies using a coupled in vitro transcription-translation system based on CHO cell lysates

机译:使用基于CHO细胞裂解物的耦合体外转录翻译系统无细胞合成功能性抗体

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摘要

Antibodies are indispensable tools for basic research as well as diagnostic and therapeutic applications. Consequently, the development of alternative manufacturing strategies which circumvent the hurdles connected to conventional antibody production technologies is of enormous interest. To address this issue, we demonstrate the synthesis of complex antibody formats, in particular immunoglobulin G (IgG) and single-chain variable fragment Fc fusion (scFv-Fc), in a microsome-containing cell-free system based on translationally active chinese hamster ovary (CHO) cell lysates. To mimic the environment for antibody folding and assembly present in living cells, antibody genes were fused to an endoplasmic reticulum (ER)-specific signal sequence. Signal-peptide induced translocation of antibody polypeptide chains into the lumen of ER microsomes was found to be the prerequisite for antibody chain assembly and functionality. In this context, we show the rapid synthesis of antibody molecules in different reaction formats, including batch and continuous-exchange cell-free (CECF) reactions, depending on the amount of protein needed for further analysis. In addition, we demonstrate site-specific and residue-specific labeling of antibodies with fluorescent non-canonical amino acids. In summary, our study describes a novel antibody production platform which combines the highly efficient mammalian protein folding machinery of CHO cells with the benefits of cell-free protein synthesis.
机译:抗体是基础研究以及诊断和治疗应用必不可少的工具。因此,开发出规避与常规抗体生产技术有关的障碍的替代制造策略引起了极大的兴趣。为了解决这个问题,我们在基于翻译活性中国仓鼠的含微粒体的无细胞系统中证明了复杂抗体形式的合成,特别是免疫球蛋白G(IgG)和单链可变片段Fc融合蛋白(scFv-Fc)的合成卵巢(CHO)细胞裂解物。为了模拟活细胞中存在的抗体折叠和组装环境,将抗体基因与内质网(ER)特异性信号序列融合。发现信号肽诱导的抗体多肽链易位到ER微粒体的内腔中是抗体链组装和功能性的先决条件。在这种情况下,我们显示了不同反应形式的抗体分子的快速合成,包括分批和连续交换无细胞(CECF)反应,具体取决于进一步分析所需的蛋白质量。此外,我们展示了荧光非经典氨基酸对抗体的位点特异性和残基特异性标记。总而言之,我们的研究描述了一种新型抗体生产平台,该平台结合了CHO细胞的高效哺乳动物蛋白折叠机制与无细胞蛋白合成的优势。

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