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首页> 外文期刊>Eukaryotic cell >Three Prevacuolar Compartment Rab GTPases Impact Candida albicans Hyphal Growth
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Three Prevacuolar Compartment Rab GTPases Impact Candida albicans Hyphal Growth

机译:三个前室隔Rab GTPases影响白色念珠菌菌丝生长

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Disruption of vacuolar biogenesis in the pathogenic yeast Candida albicans causes profound defects in polarized hyphal growth. However, the precise vacuolar pathways involved in yeast-hypha differentiation have not been determined. Previously we focused on Vps21p, a Rab GTPase involved in directing vacuolar trafficking through the late endosomal prevacuolar compartment (PVC). Herein, we identify two additional Vps21p-related GTPases, Ypt52p and Ypt53p, that colocalize with Vps21p and can suppress the hyphal defects of the vps21Δ/Δ mutant. Phenotypic analysis of gene deletion strains revealed that loss of both VPS21 and YPT52 causes synthetic defects in endocytic trafficking to the vacuole, as well as delivery of the virulence-associated vacuolar membrane protein Mlt1p from the Golgi compartment. Transcription of all three GTPase-encoding genes is increased under hyphal growth conditions, and overexpression of the transcription factor Ume6p is sufficient to increase the transcription of these genes. While only the vps21Δ/Δ single mutant has hyphal growth defects, these were greatly exacerbated in a vps21Δ/Δ ypt52Δ/Δ double mutant. On the basis of relative expression levels and phenotypic analysis of gene deletion strains, Vps21p is the most important of the three GTPases, followed by Ypt52p, while Ypt53p has an only marginal impact on C. albicans physiology. Finally, disruption of a nonendosomal AP-3-dependent vacuolar trafficking pathway in the vps21Δ/Δ ypt52Δ/Δ mutant, further exacerbated the stress and hyphal growth defects. These findings underscore the importance of membrane trafficking through the PVC in sustaining the invasive hyphal growth form of C. albicans.
机译:致病性酵母白色念珠菌中液泡生物发生的破坏导致极化菌丝生长的严重缺陷。然而,尚未确定参与酵母菌丝分化的精确液泡途径。以前,我们专注于Vps21p,Rab GTPase参与引导液泡通过内体的前真空腔室(PVC)转运。在本文中,我们确定了另外两个与Vps21p相关的GTPases Ypt52p和Ypt53p,它们与Vps21p共定位并可以抑制 vps21 Δ/Δ突变体的菌丝缺陷。基因缺失菌株的表型分析表明, VPS21 YPT52 的缺失会导致内吞运输到液泡的合成缺陷,以及与毒力相关的液泡膜蛋白的传递来自高尔基体隔室的Mlt1p。在菌丝生长条件下,所有三个编码GTPase的基因的转录都增加了,转录因子Ume6p的过表达足以增加这些基因的转录。尽管只有 vps21 Δ/Δ单个突变体具有菌丝生长缺陷,但在 vps21 Δ/Δ ypt52 Δ/Δ双重突变中却大大恶化了。突变体。根据相对表达水平和基因缺失菌株的表型分析,Vps21p是三个GTPases中最重要的,其次是Ypt52p,而Ypt53p对白色念珠菌的生理影响很小。最后, vps21 Δ/Δ ypt52 Δ/Δ突变体中非内体AP-3依赖性液泡运输途径的破坏,进一步加剧了压力和菌丝生长缺陷。这些发现强调了通过PVC转运膜在维持白色念珠菌的侵入性菌丝生长形式中的重要性。

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