Biomolécules et Biotechnologies Végétales, UFR Pharmacie, Université François Rabelais de Tours, EA2106, Tours, France.
Curr Genet. 2012 Aug;58(4):245-54. doi: 10.1007/s00294-012-0377-3. Epub 2012 May 23.
Candida guilliermondii is an interesting biotechnological model for the industrial production of value-added metabolites and also remains an opportunistic emerging fungal agent of candidiasis often associated with oncology patients. The aim of the present study was to establish a convenient transformation system for C. guilliermondii by developing both an ATCC 6260-derived recipient strain and a recyclable selection marker. We first disrupted the TRP5 gene in the wild-type strain and demonstrated that trp5 mutants were tryptophan auxotroph as well as being resistant to the antimetabolite 5-fluoroanthranilic acid (FAA). Following an FAA selection of spontaneous mutants derived from the ATCC 6260 strain and complementation analysis, we demonstrated that trp5 genotypes could be directly recovered on FAA-containing medium. The TRP5 wild-type allele, flanked by two short repeated sequences of its 3'UTR, was then used to disrupt the FCY1 gene in C. guilliermondii trp5 recipient strains. The resulting fcy1 mutants displayed strong flucytosine resistance and a counter-selection on FAA allowed us to pop-out the TRP5 allele from the FCY1 locus. To illustrate the capacity of this blaster system to achieve a second round of gene disruption, we knocked out both the LEU2 and the HOG1 genes in the trp5, fcy1 background. Although all previously described yeast "TRP blaster" disruption systems used TRP1 as counter-selectable marker, this study demonstrated the potential of the TRP5 gene in such strategies. This newly created "TRP5 blaster" disruption system thus represents a powerful genetic tool to study the function of a large pallet of genes in C. guilliermondii.
季也蒙念珠菌是一种很有前途的生物技术模型,可用于工业生产有价值的代谢产物,也是一种机会性新兴真菌病原体,常与肿瘤患者相关。本研究旨在通过开发 ATCC 6260 衍生的受体菌株和可回收的选择标记物,为 C. guilliermondii 建立一个方便的转化系统。我们首先在野生型菌株中敲除了 TRP5 基因,并证明 trp5 突变体是色氨酸营养缺陷型,同时对代谢物 5-氟乳清酸(FAA)具有抗性。通过对 ATCC 6260 菌株自发突变体进行 FAA 选择和互补分析,我们证明了 trp5 基因型可以直接在含有 FAA 的培养基上回收。然后,我们使用侧翼带有其 3'UTR 的两个短重复序列的 TRP5 野生型等位基因,敲除 C. guilliermondii trp5 受体菌株中的 FCY1 基因。所得的 fcy1 突变体表现出强烈的氟胞嘧啶抗性,在 FAA 上的反向选择允许我们从 FCY1 基因座中弹出 TRP5 等位基因。为了说明该爆破系统实现第二轮基因敲除的能力,我们在 trp5、fcy1 背景中敲除了 LEU2 和 HOG1 基因。尽管之前描述的所有酵母“TRP 爆破系统”都使用 TRP1 作为可选择的标记物,但本研究证明了 TRP5 基因在这些策略中的潜力。这个新创建的“TRP5 爆破系统”因此成为研究 C. guilliermondii 中大量基因功能的强大遗传工具。