具有优化功能表型的基因组重编码大肠杆菌

Farren Isaacs, Colin Hemez, Kyle Mohler, Felix Radford, Jack Moen, Jesse Rinehart
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摘要

基因组重编码生物有望应用于许多生物技术领域,但与非重编码生物相比,它们可能会表现出严重的适应性缺陷。我们利用靶向代谢筛选、遗传分析和蛋白质组学来确定模范重编码生物大肠杆菌 C321.∆A 的适应性缺陷的起源。我们发现,异亮氨酸生物合成和释放因子活性的缺陷是由存在于所有 K-12 系菌株中的突变引起的,这些突变在 C321.∆A 中引起了严重的适应性损伤,这表明基因组重编码加剧了前体菌株中存在的次优性状。通过纠正这些突变和其他 C321.∆A 特异性突变,我们培育出的 C321.∆A 菌株与祖先 C321 相比,在富培养基和极少培养基中的加倍时间分别缩短了 17% 和 42%。生长动力学得到改善的菌株还表现出更强的核糖体非标准氨基酸整合能力。蛋白质组分析表明,C321.ΔA 缺乏调控必需氨基酸和核苷酸生物合成途径的能力,而定向突变逆转可恢复调控能力。我们的工作为快速、精确地优化基因组重编码生物和其他工程微生物的表型提供了一种策略。
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Genomically recoded Escherichia coli with optimized functional phenotypes
Genomically recoded organisms hold promise for many biotechnological applications, but they may exhibit substantial fitness defects relative to their non-recoded counterparts. We used targeted metabolic screens, genetic analysis, and proteomics to identify the origins of fitness impairment in a model recoded organism, Escherichia coli C321.∆A. We found that defects in isoleucine biosynthesis and release factor activity, caused by mutations extant in all K-12 lineage strains, elicited profound fitness impairments in C321.∆A, suggesting that genome recoding exacerbates suboptimal traits present in precursor strains. By correcting these and other C321.∆A-specific mutations, we engineered C321.∆A strains with doubling time reductions of 17% and 42% in rich and minimal medium, respectively, compared to ancestral C321. Strains with improved growth kinetics also demonstrated enhanced ribosomal non-standard amino acid incorporation capabilities. Proteomic analysis indicated that C321.∆A lacks the ability to regulate essential amino acid and nucleotide biosynthesis pathways, and that targeted mutation reversion restored regulatory capabilities. Our work outlines a strategy for the rapid and precise phenotypic optimization of genomically recoded organisms and other engineered microbes.
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