Department of Cell Biology, Institute of Life Science, Kurume University, Kurume, Japan.
Laboratory of Metabolic Regulation and Genetics, Institute for Molecular and Cellular Regulation, Gunma University, Maebashi, Japan.
J Cell Biol. 2025 Jan 6;224(1). doi: 10.1083/jcb.202404085. Epub 2024 Oct 8.
The fission yeast, Schizosaccharomyces pombe, is an excellent eukaryote model organism for studying essential biological processes. Its genome contains ∼1,200 genes essential for cell viability, most of which are evolutionarily conserved. To study these essential genes, resources enabling conditional perturbation of target genes are required. Here, we constructed comprehensive arrayed libraries of plasmids and strains to knock down essential genes in S. pombe using dCas9-mediated CRISPRi. These libraries cover ∼98% of all essential genes in fission yeast. We estimate that in ∼60% of these strains, transcription of a target gene was repressed so efficiently that cell proliferation was significantly inhibited. To demonstrate the usefulness of these libraries, we performed metabolic analyses with knockdown strains and revealed flexible interaction among metabolic pathways. Libraries established in this study enable comprehensive functional analyses of essential genes in S. pombe and will facilitate the understanding of essential biological processes in eukaryotes.
裂殖酵母 Schizosaccharomyces pombe 是研究基本生物过程的优秀真核生物模式生物。其基因组包含约 1200 个对细胞存活至关重要的基因,其中大多数在进化上是保守的。为了研究这些必需基因,需要有资源来实现对靶基因的条件性扰动。在这里,我们构建了涵盖裂殖酵母所有必需基因的大规模质粒和菌株的阵列文库,用于使用 dCas9 介导的 CRISPRi 敲低必需基因。我们估计,在大约 60%的这些菌株中,靶基因的转录被有效地抑制,从而导致细胞增殖显著受到抑制。为了证明这些文库的有用性,我们对敲低菌株进行了代谢分析,揭示了代谢途径之间灵活的相互作用。本研究中建立的文库使我们能够对裂殖酵母中的必需基因进行全面的功能分析,并有助于理解真核生物中的基本生物学过程。