Suppr超能文献

糖基磷脂酰肌醇(GPI)生物合成途径中首个甘露糖基转移酶的催化亚基影响白色念珠菌的生长、细胞壁完整性及菌丝形态发生。

The catalytic subunit of the first mannosyltransferase in the GPI biosynthetic pathway affects growth, cell wall integrity and hyphal morphogenesis in Candida albicans.

作者信息

Singh Sneh Lata, Rai Ramesh Chandra, Sah Sudisht Kumar, Komath Sneha Sudha

机构信息

School of Life Sciences, Jawaharlal Nehru University, New Delhi, 110067, India.

出版信息

Yeast. 2016 Aug;33(8):365-83. doi: 10.1002/yea.3179.

Abstract

CaGpi14 is the catalytic subunit of the first mannosyltransferase that is involved in the glycosylphosphatidylinositol (GPI) biosynthetic pathway in Candida albicans. We show that CaGPI14 is able to rescue a conditionally lethal gpi14 mutant of Saccharomyces cerevisiae, unlike its mammalian homologue. The depletion of this enzyme in C. albicans leads to severe growth defects, besides causing deficiencies in GPI anchor levels. In addition, CaGpi14 depletion results in cell wall defects and upregulation of the cell wall integrity response pathway. This in turn appears to trigger the osmotic-stress dependent activation of the HOG1 pathway and an upregulation of HOG1 as well as its downstream target, SKO1, a known suppressor of expression of hyphae-specific genes. Consistent with this, mutants of CaGPI14 are unable to undergo hyphal transformations in different hyphae-inducing media, under conditions that produce abundant hyphae in the wild-type cells. Hyphal defects in the CaGPI14 mutants could not be attributed either to reduced protein kinase C activation or to defective Ras signalling in these cells but appeared to be driven by perturbations in the HOG1 pathway. Copyright © 2016 John Wiley & Sons, Ltd.

摘要

CaGpi14是白色念珠菌中参与糖基磷脂酰肌醇(GPI)生物合成途径的首个甘露糖基转移酶的催化亚基。我们发现,与哺乳动物同源物不同,CaGPI14能够挽救酿酒酵母的条件致死性gpi14突变体。在白色念珠菌中,这种酶的缺失除了导致GPI锚定水平不足外,还会导致严重的生长缺陷。此外,CaGpi14的缺失会导致细胞壁缺陷,并上调细胞壁完整性反应途径。这反过来似乎会触发HOG1途径的渗透应激依赖性激活,以及HOG1及其下游靶点SKO1(一种已知的菌丝特异性基因表达抑制剂)的上调。与此一致的是,在野生型细胞中能产生大量菌丝的条件下,CaGPI14突变体在不同的菌丝诱导培养基中无法进行菌丝转化。CaGPI14突变体中的菌丝缺陷既不能归因于这些细胞中蛋白激酶C激活的降低,也不能归因于Ras信号传导的缺陷,而似乎是由HOG1途径的扰动驱动的。版权所有© 2016约翰威立父子有限公司。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验