Suppr超能文献

酿酒酵母中编码UDP - 葡萄糖焦磷酸化酶的UGP1基因的遗传与生化特性分析

Genetic and biochemical characterization of the UGP1 gene encoding the UDP-glucose pyrophosphorylase from Saccharomyces cerevisiae.

作者信息

Daran J M, Dallies N, Thines-Sempoux D, Paquet V, François J

机构信息

Centre de Bioingenierie Gilbert Durand, URA CNRS 544, Toulouse, France.

出版信息

Eur J Biochem. 1995 Oct 15;233(2):520-30. doi: 10.1111/j.1432-1033.1995.520_2.x.

Abstract

We report here that the open reading frame YKL248, previously identified during the systematic sequencing of yeast chromosome XI [Purnelle B., Skala, J., Van Dijck, L. & Goffeau, A. (1992) Yeast 8, 977-986] encodes UDP-glucose pyrophosphorylase (UGPase), the enzyme which catalyses the reversible formation of UDP-Glc from glucose 1-phosphate and UTP. Proof for this function come from sequence alignment of the YKL248 product with UGPase of other species, from complementation studies of an Escherichia coli galU mutant deficient in UGPase activity, and from overexpression studies. In particular, the amino acid sequence motifs involved in the binding of glucose 1-phosphate and UDP-Glc are entirely conserved between the yeast, bovine, human and potato tuber UGPases, and multi-copy expression of YKL248 resulted in a 40-fold increase in UGPase activity. This gene was, therefore, renamed UGP1. Gene disruption at the UGP1 locus in a diploid strain, followed by tetrad analysis, showed that UGPase is essential for cell viability. Functional analysis of UGP1 was, therefore, carried out by generating strains in which UGPase could be either overexpressed or depleted. This was done by generating haploid strains carrying either UGP1 on a multicopy vector or the chromosomal deletion of UGP1, and rescued by a vector bearing the wild-type gene under the control of the glucose-repressible galactose-inducible promoter. The effects of overproducing UGPase on the cell metabolism and morphology were carbon-source dependent. On glucose medium, the 40-fold increase of UGPase activity was restricted to a twofold increase in the concentration of glycogen and UDP-Glc, with no significant effect on growth. In contrast, on galactose, the 40-fold increase in UGPase activity was accompanied by several effects, including a threefold reduction of the growth rate, a 3-5-fold increase in the concentrations of UDP-Glc, UDP-Gal and galactose 1-phosphate, a higher sensitivity to calcofluor white and an increase in the degree of protein glycosylation. Depletion of UGPase activity was performed by transferring the mutant strains from galactose to glucose medium. Unexpectedly, growth of these mutants on glucose was as efficient as that of the control, although the mutants contained only 5-10% wild-type UGPase activity, and a growth defect could never been obtained, even after serial transfers of the mutants to a 10% glucose medium. However, the 10-fold reduction of UGPase activity induced a multi-budding pattern, a higher resistance to zymolyase, a slight increase in the calcofluor sensitivity and a decrease in the cell-wall beta-glucan content. All these alterations, induced by manipulating the UGP1 gene, are discussed in the context of the strategic position of UDP-Glc in yeast metabolism.

摘要

我们在此报告,开放阅读框YKL248(先前在酵母XI号染色体的系统测序中鉴定出来[普尔内尔B.、斯卡拉J.、范迪克L.和戈菲奥A.(1992年)《酵母》8,977 - 986])编码UDP - 葡萄糖焦磷酸化酶(UGPase),该酶催化由1 - 磷酸葡萄糖和UTP可逆形成UDP - Glc。这一功能的证据来自YKL248产物与其他物种UGPase的序列比对、对缺乏UGPase活性的大肠杆菌galU突变体的互补研究以及过表达研究。特别是,酵母、牛、人和马铃薯块茎UGPase中参与1 - 磷酸葡萄糖和UDP - Glc结合的氨基酸序列基序完全保守,YKL248的多拷贝表达导致UGPase活性增加40倍。因此,该基因被重新命名为UGP1。在二倍体菌株的UGP1位点进行基因破坏,随后进行四分体分析,表明UGPase对细胞活力至关重要。因此,通过构建UGPase可过表达或缺失的菌株对UGP1进行功能分析。这是通过构建携带多拷贝载体上的UGP1或UGP1染色体缺失的单倍体菌株来实现的,并由在葡萄糖可抑制、半乳糖可诱导启动子控制下携带野生型基因的载体拯救。过量产生UGPase对细胞代谢和形态的影响取决于碳源。在葡萄糖培养基上,UGPase活性增加40倍仅导致糖原和UDP - Glc浓度增加两倍,对生长无显著影响。相反,在半乳糖上,UGPase活性增加40倍伴随着多种影响,包括生长速率降低三倍、UDP - Glc、UDP - Gal和1 - 磷酸半乳糖浓度增加3 - 5倍、对荧光增白剂的敏感性更高以及蛋白质糖基化程度增加。通过将突变菌株从半乳糖培养基转移到葡萄糖培养基来降低UGPase活性。出乎意料的是,这些突变体在葡萄糖上的生长与对照一样高效,尽管突变体仅含有5 - 10%的野生型UGPase活性,并且即使将突变体连续转移到10%葡萄糖培养基上也从未获得生长缺陷。然而,UGPase活性降低10倍会诱导多芽殖模式、对溶菌酶的抗性增加、对荧光增白剂的敏感性略有增加以及细胞壁β - 葡聚糖含量降低。在UDP - Glc在酵母代谢中的战略地位的背景下,讨论了所有这些由操纵UGP1基因引起的变化。

文献检索

告别复杂PubMed语法,用中文像聊天一样搜索,搜遍4000万医学文献。AI智能推荐,让科研检索更轻松。

立即免费搜索

文件翻译

保留排版,准确专业,支持PDF/Word/PPT等文件格式,支持 12+语言互译。

免费翻译文档

深度研究

AI帮你快速写综述,25分钟生成高质量综述,智能提取关键信息,辅助科研写作。

立即免费体验