大肠杆菌
微生物学
生物
计算生物学
遗传学
基因
作者
Lara Pauline Munkler,Elsayed T. Mohamed,Ruben Vazquez-Uribe,Victoria Visby Nissen,Peter Rugbjerg,Andreas Worberg,John M. Woodley,Adam M. Feist,Morten Otto Alexander Sommer
标识
DOI:10.1016/j.ymben.2024.08.001
摘要
Advanced microbiome therapeutics have emerged as a powerful approach for the treatment of numerous diseases. While the genetic instability of genetically engineered microorganisms is a well-known challenge in the scale-up of biomanufacturing processes, it has not yet been investigated for advanced microbiome therapeutics. Here, the evolution of engineered Escherichia coli Nissle 1917 strains producing Interleukin 2 and Aldafermin were investigated in two strain backgrounds with and without the three error-prone DNA polymerases polB, dinB, and umuDC, which contribute to the mutation rate of the host strain. Whole genome short-read sequencing revealed the genetic instability of the pMUT-based production plasmid after serial passaging for approximately 150 generations using an automated platform for high-throughput microbial evolution in five independent lineages for six distinct strains. While a reduction of the number of mutations of 12%–43% could be observed after the deletion of the error-prone DNA polymerases, the interruption of production-relevant genes could not be prevented, highlighting the need for additional strategies to improve the stability of advanced microbiome therapeutics.
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