Eukarÿs SAS, Génopole Campus 3, 4 rue Pierre Fontaine, 91058 Evry Cedex, France.
Architecture et Fonction des Macromolécules Biologiques (AFMB) UMR 7257 CNRS/AMU, 163 Avenue de Luminy, 13288 Marseille Cedex 9, France.
Nucleic Acids Res. 2019 Mar 18;47(5):2681-2698. doi: 10.1093/nar/gkz069.
Most eukaryotic expression systems make use of host-cell nuclear transcriptional and post-transcriptional machineries. Here, we present the first generation of the chimeric cytoplasmic capping-prone phage polymerase (C3P3-G1) expression system developed by biological engineering, which generates capped and polyadenylated transcripts in host-cell cytoplasm by means of two components. First, an artificial single-unit chimeric enzyme made by fusing an mRNA capping enzyme and a DNA-dependent RNA polymerase. Second, specific DNA templates designed to operate with the C3P3-G1 enzyme, which encode for the transcripts and their artificial polyadenylation. This system, which can potentially be adapted to any in cellulo or in vivo eukaryotic expression applications, was optimized for transient expression in mammalian cells. C3P3-G1 shows promising results for protein production in Chinese Hamster Ovary (CHO-K1) cells. This work also provides avenues for enhancing the performances for next generation C3P3 systems.
大多数真核表达系统利用宿主细胞的核转录和转录后机制。在这里,我们介绍了第一代嵌合细胞质帽状倾向噬菌体聚合酶(C3P3-G1)表达系统,该系统通过两种成分在宿主细胞质中产生加帽和聚腺苷酸化的转录本。首先,通过融合 mRNA 加帽酶和 DNA 依赖性 RNA 聚合酶制成的人工单单元嵌合酶。其次,设计用于与 C3P3-G1 酶一起作用的特定 DNA 模板,该模板编码转录本及其人工聚腺苷酸化。该系统可以潜在地适应任何细胞内或体内真核表达应用,已针对哺乳动物细胞中的瞬时表达进行了优化。C3P3-G1 在 CHO-K1 细胞中的蛋白生产中显示出有希望的结果。这项工作还为增强下一代 C3P3 系统的性能提供了途径。