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In Saccharomyces cerevisiae the expression of all known nitrogen catabolite pathways are regulated by four regulators known as Gln3, Gat1, Dal80, and Deh1. This is known as nitrogen catabolite repression (NCR). They bind to motifs in the promoter region to the consensus sequence 5′ GATAA 3′. Gln3 and Gat1 act positively on gene expression whereas Dal80 and Deh1 act negatively. Expression of nitrogen catabolite pathway genes known to be regulated by these four regulators are glutamine, glutamate, proline, urea, arginine, GABA, and allantoine. In addition, the expression of the genes encoding the general amino acid permease and the ammonium permease are also regulated by these four regulatory proteins. Another group of genes whose expression is also regulated by Gln3, Gat1, Dal80, and Deh1 are some protease, CPS1, PRB1, LAP1, and PEP4, responsible for the degradation of proteins into amino acids thereby providing a nitrogen source to the cell. In this review, all known promoter sequences related to expression of nitrogen catabolite pathways are discussed as well as other regulatory proteins. Overview of metabolic pathways and promotors are presented.  相似文献   

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To identify cis-acting regulatory elements responsible for developmental control of the common bean seed storage protein β-phaseolin, a series of 5′-deletion mutants of the 782 bp upstream sequence together with the coding and 3′-regions of the β-phaseolin gene were used to transform tobacco. One major positive regulatory element (?295/?228) and a putative minimal promoter (?64/?14) were indicated by large reductions in phaseolin mRNA and protein concentrations in seeds of plants deficient for these regions. In addition, minor negative (?422/?296) and positive (?782/?423) elements also influenced the level of phaseolin mRNA expression in seeds. One temporal element (?295/?107) governed late expression of phaseolin mRNA in seeds, and possibly a second (?64/?14) regulated early expression. The ?64/?14 promoter containing two TATA boxes conferred spatially regulated gene expression, and was sufficient for a low level of expression in root and stem. Significant levels of phaseolin mRNA and protein were detected in stem cortices and secondary roots of plants lacking the ?295/?107 negative element. No significant expression in leaf tissue was detected. Results demonstrate that developmental control of β-phaseolin requires a minimal promoter, one element for the suppression of expression in root and stem tissue, three elements governing quantitative expression in seeds, and at least one temporal element controlling expression in seeds.  相似文献   

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