Biswas Subhrajit, Roy Monideepa, Datta Asis
School of Life Sciences, Jawaharlal Nehru University, New Delhi-110 067, India.
Microbiology (Reading). 2003 Sep;149(Pt 9):2597-2608. doi: 10.1099/mic.0.26215-0.
Candida albicans is able to grow in a variety of reversible morphological forms (yeast, pseudohyphal and hyphal) in response to various environmental signals, noteworthy among them being N-acetylglucosamine (GlcNAc). The gene CaGAP1, homologous to GAP1, which encodes the general amino acid permease from Saccharomyces cerevisiae, was isolated on the basis of its induction by GlcNAc through differential screening of a C. albicans genomic library. The gene could functionally complement an S. cerevisiae gap1 mutant by rendering it susceptible to the toxic amino acid analogue mimosine in minimal proline media. As in S. cerevisiae, mutation of the CaGAP1 gene had an effect on citrulline uptake in C. albicans. Northern analysis showed that GlcNAc-induced expression of CaGAP1 was further enhanced in synthetic minimal media supplemented with single amino acids (glutamate, proline and glutamine) or urea (without amino acids) but repressed in minimal ammonium media. Induction of CaGAP1 expression by GlcNAc was nullified in C. albicans deleted for the transcription factor CPH1 and the hyphal regulator RAS1, indicating the involvement of Cph1p-dependent Ras1p signalling in CaGAP1 expression. A homozygous mutant of this gene showed defective hyphal formation in solid hyphal-inducing media and exhibited less hyphal clumps when induced by GlcNAc. Alteration of morphology and short filamentation under nitrogen-starvation conditions in the heterozygous mutant suggested that CaGAP1 affects morphogenesis in a dose-dependent manner.
白色念珠菌能够根据各种环境信号以多种可逆的形态形式生长(酵母、假菌丝和菌丝),其中值得注意的是N-乙酰葡糖胺(GlcNAc)。通过对白色念珠菌基因组文库进行差异筛选,基于其被GlcNAc诱导,分离出了与酿酒酵母中编码通用氨基酸通透酶的GAP1同源的CaGAP1基因。该基因可通过使酿酒酵母gap1突变体在基本脯氨酸培养基中对有毒氨基酸类似物含羞草碱敏感,从而在功能上互补该突变体。与酿酒酵母一样,CaGAP1基因突变对白色念珠菌中瓜氨酸的摄取有影响。Northern分析表明,在添加单一氨基酸(谷氨酸、脯氨酸和谷氨酰胺)或尿素(无氨基酸)的合成基本培养基中,GlcNAc诱导的CaGAP1表达进一步增强,但在基本铵培养基中受到抑制。在缺失转录因子CPH1和菌丝调节因子RAS1的白色念珠菌中,GlcNAc对CaGAP1表达的诱导作用消失,表明Cph1p依赖的Ras1p信号传导参与了CaGAP1的表达。该基因的纯合突变体在固体菌丝诱导培养基中显示出菌丝形成缺陷,并且在被GlcNAc诱导时表现出较少的菌丝团块。杂合突变体在氮饥饿条件下形态改变和短丝化表明CaGAP1以剂量依赖的方式影响形态发生。