Interdepartmental Microbiology Program, Iowa State University, Ames, IA, 50011, USA.
NSF Engineering Research Center for Biorenewable Chemicals, Iowa State University, Ames, IA, 50011, USA.
Appl Microbiol Biotechnol. 2021 Aug;105(14-15):5959-5972. doi: 10.1007/s00253-021-11399-4. Epub 2021 Aug 6.
Production of industrially relevant compounds in microbial cell factories can employ either genomes or plasmids as an expression platform. Selection of plasmids as pathway carriers is advantageous for rapid demonstration but poses a challenge of stability. Yarrowia lipolytica has attracted great attention in the past decade for the biosynthesis of chemicals related to fatty acids at titers attractive to industry, and many genetic tools have been developed to explore its oleaginous potential. Our recent studies on the autonomously replicating sequences (ARSs) of nonconventional yeasts revealed that the ARSs from Y. lipolytica showcase a unique structure that includes a previously unannotated sequence (spacer) linking the origin of replication (ORI) and the centromeric (CEN) element and plays a critical role in modulating plasmid behavior. Maintaining a native 645-bp spacer yielded a 2.2-fold increase in gene expression and 1.7-fold higher plasmid stability compared to a more universally employed minimized ARS. Testing the modularity of the ARS sub-elements indicated that plasmid stability exhibits a pronounced cargo dependency. Instability caused both plasmid loss and intramolecular rearrangements. Altogether, our work clarifies the appropriate application of various ARSs for the scientific community and sheds light on a previously unexplored DNA element as a potential target for engineering Y. lipolytica.
在微生物细胞工厂中生产工业相关化合物,可以使用基因组或质粒作为表达平台。选择质粒作为途径载体对于快速验证是有利的,但存在稳定性的挑战。在过去的十年中,产脂耶氏酵母(Yarrowia lipolytica)因其能够在工业上有吸引力的浓度下合成与脂肪酸有关的化学品而引起了极大的关注,并且已经开发了许多遗传工具来探索其油脂潜力。我们最近对非传统酵母的自主复制序列(ARS)的研究表明,产脂耶氏酵母的 ARS 展示了一种独特的结构,其中包括一个以前未注释的序列(间隔区),将复制起点(ORI)和着丝粒(CEN)元件连接起来,并且在调节质粒行为方面起着关键作用。与更普遍使用的最小化 ARS 相比,保持天然的 645-bp 间隔区可使基因表达提高 2.2 倍,质粒稳定性提高 1.7 倍。测试 ARS 亚元件的模块化表明,质粒稳定性表现出明显的货物依赖性。不稳定性导致质粒丢失和分子内重排。总的来说,我们的工作阐明了各种 ARS 对于科学界的适当应用,并揭示了一个以前未探索的 DNA 元件作为工程化产脂耶氏酵母的潜在目标。