Pan Yingjie, Yang Jiao, Wu Jianping, Yang Lirong, Fang Hao
ZJU-Hangzhou Global Scientific and Technological Innovation Center, Zhejiang University, Hangzhou, Zhejiang, China.
College of Chemical and Biological Engineering, Zhejiang University, Hangzhou, Zhejiang, China.
Front Microbiol. 2022 Nov 24;13:1059777. doi: 10.3389/fmicb.2022.1059777. eCollection 2022.
(syn. spp.) has attracted extensive attention as an efficient platform for recombinant protein (RP) production. For obtaining a higher protein titer, many researchers have put lots of effort into different areas and made some progress. Here, we summarized the most recent advances of the last 5 years to get a better understanding of its future direction of development. The appearance of innovative genetic tools and methodologies like the CRISPR/Cas9 gene-editing system eases the manipulation of gene expression systems and greatly improves the efficiency of exploring gene functions. The integration of novel pathways in microorganisms has raised more ideas of metabolic engineering for enhancing RP production. In addition, some new opportunities for the manufacture of proteins have been created by the application of novel mathematical models coupled with high-throughput screening to have a better overview of bottlenecks in the biosynthetic process.
(同义词: spp.)作为一种用于重组蛋白(RP)生产的高效平台,已引起广泛关注。为了获得更高的蛋白产量,许多研究人员在不同领域付出了大量努力并取得了一些进展。在此,我们总结了过去5年的最新进展,以便更好地了解其未来的发展方向。诸如CRISPR/Cas9基因编辑系统等创新遗传工具和方法的出现,简化了基因表达系统的操作,并极大地提高了探索基因功能的效率。微生物中新途径的整合为提高重组蛋白生产的代谢工程带来了更多思路。此外,通过应用新型数学模型结合高通量筛选,为蛋白质制造创造了一些新机会,以便更好地了解生物合成过程中的瓶颈。