Key Laboratory of Biomass Chemical Engineering of Ministry of Education, College of Chemical and Biological Engineering, Zhejiang University, Hangzhou, China.
ZJU-Hangzhou Global Scientific and Technological Innovation Center, Zhejiang University, Hangzhou, China.
Methods Mol Biol. 2024;2760:157-167. doi: 10.1007/978-1-0716-3658-9_10.
Pichia pastoris is known for its excellent protein expression ability. As an industrial methyl nutritional yeast, it can effectively utilize methanol as the sole carbon source, serving as a potential platform for C1 biotransformation. Unfortunately, the lack of synthetic biology tools in P. pastoris limits its broad applications, particularly when multigene pathways should be manipulated. Here, the CRISPR/Cas9 system is established to efficiently integrate multiple heterologous genes to construct P. pastoris cell factories. In this protocol, with the 2,3-butanediol (BDO) biosynthetic pathway as a representative example, the procedures to construct P. pastoris cell factories are detailed using the established CRISPR-based multiplex genome integration toolkit, including donor plasmid construction, competent cell preparation and transformation, and transformant verification. The application of the CRISPR toolkit is demonstrated by the construction of engineered P. pastoris for converting methanol to BDO. This lays the foundation for the construction of P. pastoris cell factories harboring multi-gene biosynthetic pathways for the production of high-value compounds.
毕赤酵母以其出色的蛋白质表达能力而闻名。作为一种工业甲基营养酵母,它可以有效地利用甲醇作为唯一的碳源,是 C1 生物转化的潜在平台。然而,毕赤酵母缺乏合成生物学工具限制了其广泛应用,特别是在需要操作多基因途径时。在这里,我们建立了 CRISPR/Cas9 系统,以高效整合多个异源基因,构建毕赤酵母细胞工厂。在本方案中,以 2,3-丁二醇(BDO)生物合成途径为例,详细介绍了使用建立的基于 CRISPR 的多重基因组整合工具包构建毕赤酵母细胞工厂的过程,包括供体质粒构建、感受态细胞制备和转化以及转化体验证。CRISPR 工具包的应用通过构建工程化毕赤酵母将甲醇转化为 BDO 得到了证明。这为构建含有多基因生物合成途径的毕赤酵母细胞工厂,以生产高价值化合物奠定了基础。