糖酵菌病饥饿时基因靶向效率的提高

IF 2.4 3区 生物学 Q3 GENETICS & HEREDITY Fungal Genetics and Biology Pub Date : 2023-06-01 DOI:10.1016/j.fgb.2023.103809
Davies Kaimenyi , Mareike Rij , Jürgen Wendland
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引用次数: 0

摘要

常用的真菌转化方案依赖于电穿孔或乙酸锂/单链载体DNA/聚乙二醇/热休克方法的使用。我们以前曾使用后一种方法在Schoeni糖霉菌中建立DNA介导的转化,这是一种表现出坏死性真菌寄生的CTG分支酵母。为了阐明糖霉菌病捕食的分子机制,我们旨在进行基因功能分析,以确定毒力相关的途径和基因。然而,尽管转化效率令人满意,但我们的努力因破坏盒的高频率异位整合而受阻。在这里,我们表明,在减少转化体数量的同时,schoenii细胞的过夜饥饿导致通过同源重组的基因靶向性显著增加。为了证明这一点,我们删除了S.schoeni CHS1、HIS3和LEU2基因,并确定了所需的侧翼同源区大小。此外,我们用来自发酵酵母的异源leu2基因补充了S.schoeni-leu2突变体。为了证明我们的方法的有用性,我们还产生了一株发酵链球菌leu2菌株,这表明这种方法可能具有更广泛的适用性。
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Improved gene-targeting efficiency upon starvation in Saccharomycopsis

Commonly used fungal transformation protocols rely on the use of either electroporation or the lithium acetate/single strand carrier DNA/Polyethylene glycol/heat shock method. We have used the latter method previously in establishing DNA-mediated transformation in Saccharomycopsis schoenii, a CTG-clade yeast that exhibits necrotrophic mycoparasitism. To elucidate the molecular mechanisms of predation by Saccharomycopsis we aim at gene-function analyses to identify virulence-related pathways and genes. However, in spite of a satisfactory transformation efficiency our efforts were crippled by high frequency of ectopic integration of disruption cassettes. Here, we show that overnight starvation of S. schoenii cells, while reducing the number of transformants, resulted in a substantial increase in gene-targeting via homologous recombination. To demonstrate this, we have deleted the S. schoenii CHS1, HIS3 and LEU2 genes and determined the required size of the flanking homology regions. Additionally, we complemented the S. schoenii leu2 mutant with heterologous LEU2 gene from Saccharomycopsis fermentans. To demonstrate the usefulness of our approach we also generated a S. fermentans leu2 strain, suggesting that this approach may have broader applicability.

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来源期刊
Fungal Genetics and Biology
Fungal Genetics and Biology 生物-遗传学
CiteScore
6.20
自引率
3.30%
发文量
66
审稿时长
85 days
期刊介绍: Fungal Genetics and Biology, formerly known as Experimental Mycology, publishes experimental investigations of fungi and their traditional allies that relate structure and function to growth, reproduction, morphogenesis, and differentiation. This journal especially welcomes studies of gene organization and expression and of developmental processes at the cellular, subcellular, and molecular levels. The journal also includes suitable experimental inquiries into fungal cytology, biochemistry, physiology, genetics, and phylogeny. Fungal Genetics and Biology publishes basic research conducted by mycologists, cell biologists, biochemists, geneticists, and molecular biologists. Research Areas include: • Biochemistry • Cytology • Developmental biology • Evolutionary biology • Genetics • Molecular biology • Phylogeny • Physiology.
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