Institute of Biochemistry and Cell Biology, Chinese Academy of Sciences, Shanghai, China.
Acta Biochim Biophys Sin (Shanghai). 2010 Oct;42(10):735-44. doi: 10.1093/abbs/gmq076.
Phenotypic switching in Candida albicans spontaneously generates different cellular morphologies. The reversible switching between white and opaque phenotypes is regulated by multiple regulators including Efg1 and Wor1. In mating-type-like locus (MTL) homozygous cells, the Efg1 functions as a repressor, whereas the Wor1 acts as an activator in white-opaque switching. We presented evidence that switching between white and opaque in efg1/efg1 mutant is regulated by ambient pH. In pH 6.8 media, the efg1/efg1 mutant cells exhibited opaque form, but shifted to white form in pH 4.5 media. The pH-dependent morphological switching is not blocked by further deletion of WOR1 in the efg1/efg1 mutant. Correlated with the phenotype, the opaque-phase-specific gene OP4 was induced in efg1/efg1 mutant cells when cultured in pH 6.8 media, and was repressed in pH 4.5 media. Consistently, the MTLa efg1/efg1 mutant cells could mate efficiently with MTLα cells in pH 6.8 media, but poorly in pH 4.5 media. Ectopic expression of the Rim101-405 allele in the efg1/efg1 mutant helped to bypass the pH restriction on white-opaque switching and show opaque form in both neutral and acidic media. We proposed that relief of the Efg1 repression enables C. albicans to undergo white-opaque switching in pH-dependent regulation mediated by Rim101-signaling pathway.
白色念珠菌的表型转换会自发产生不同的细胞形态。白-暗两种表型之间的可逆转换受多种调节剂的调控,包括 Efg1 和 Wor1。在交配型同源纯合细胞中,Efg1 作为抑制因子,而 Wor1 在白-暗转换中作为激活因子。我们提出的证据表明,在 efg1/efg1 突变体中,白-暗转换受环境 pH 值的调控。在 pH 值为 6.8 的培养基中,efg1/efg1 突变体细胞表现为暗型,但在 pH 值为 4.5 的培养基中转变为白型。在 pH 值依赖的形态转换中,进一步缺失 WOR1 并不能阻断 efg1/efg1 突变体的转换。与表型相关的是,当在 pH 值为 6.8 的培养基中培养时,efg1/efg1 突变体细胞中表达了暗型特异性基因 OP4,并在 pH 值为 4.5 的培养基中被抑制。一致地,在 pH 值为 6.8 的培养基中,MTLa efg1/efg1 突变体细胞能够与 MTLα 细胞有效交配,但在 pH 值为 4.5 的培养基中则较差。在 efg1/efg1 突变体中异位表达 Rim101-405 等位基因有助于绕过 pH 值对白-暗转换的限制,并在中性和酸性培养基中均显示暗型。我们提出,Efg1 抑制作用的缓解使白色念珠菌能够在 Rim101 信号通路介导的 pH 值依赖性调节中进行白-暗转换。