Zhang Yi, Li Si-Yang, Zhu Hang-Ju, Lai Jun-Wei, Sun Shuo-Shuo, Lin Yue, Li Xing-Ling, Guo Zhao-Bin, Lv Ziheng, Meng Hongxu, Hu Ke, Xu Ming, Yu Ting-Ting
Department of Colorectal Surgery, The First Affiliated Hospital of Nanjing Medical University, Nanjing, 210029, Jiangsu, China.
Department of Medical Genetics, School of Basic Medical Science, Nanjing Medical University, Nanjing, 211166, Jiangsu, China.
Mater Today Bio. 2023 Jul 14;21:100732. doi: 10.1016/j.mtbio.2023.100732. eCollection 2023 Aug.
Eukaryotic expression systems are frequently employed for the production of recombinant proteins as therapeutics as well as research tools. Among which mammalian cell protein expression approach is the most powerful one, which can express complex proteins or genetic engineered biological drugs, such as PD-1. However, the high expense, which partially derives from its low protein yielding efficiency, limited the further application of such approach in large scale production of target proteins. To address this issue, we proposed a novel technique to promote the protein production efficiency of mammal cells without using conventional genetic engineered approaches. By placing 293T cells in a hydrogel 3D cell culture platform and adjusting the stress relaxation of the matrix hydrogel, cells formed multicellular spheroids by self-organization. In particular, the multicellular spheroids have a significantly enhanced ability to transiently express multiple proteins (SHH-N, PD-1 and PDL-1). We also examined in detail the mechanism underlying this phenomenon, and found that the reorganization of cytoskeleton during spheroids formation enhances the translation process of protein by recruiting ribosomes. Overall, this finding provides a novel approach for subsequent improvement of large-scale mammalian protein expression cell systems.
真核表达系统经常被用于生产作为治疗药物以及研究工具的重组蛋白。其中哺乳动物细胞蛋白表达方法是最强大的一种,它能够表达复杂蛋白或基因工程生物药物,比如PD-1。然而,高昂的成本(部分源于其较低的蛋白产出效率)限制了这种方法在大规模生产目标蛋白中的进一步应用。为了解决这个问题,我们提出了一种新技术,无需使用传统基因工程方法来提高哺乳动物细胞的蛋白生产效率。通过将293T细胞置于水凝胶三维细胞培养平台中,并调节基质水凝胶的应力松弛,细胞通过自组织形成多细胞球体。特别地,这些多细胞球体具有显著增强的瞬时表达多种蛋白(SHH-N、PD-1和PDL-1)的能力。我们还详细研究了这一现象背后的机制,发现球体形成过程中细胞骨架的重组通过招募核糖体增强了蛋白的翻译过程。总体而言,这一发现为后续改进大规模哺乳动物蛋白表达细胞系统提供了一种新方法。