RT Journal Article SR Electronic(1) A1 ter Schure, Eelko G. A1 Silljé, Herman H. W. A1 Vermeulen, Edgar E. A1 Kalhorn, Jan-Willem A1 Verkleij, Arie J. A1 Boonstra, Johannes A1 Verrips, C. TheoYR 1998 T1 Repression of nitrogen catabolic genes by ammonia and glutamine in nitrogen-limited continuous cultures of Saccharomyces cerevisiae JF Microbiology, VO 144 IS 5 SP 1451 OP 1462 DO https://doi.org/10.1099/00221287-144-5-1451 PB Microbiology Society, SN 1465-2080, AB Growth of Saccharomyces cerevisiae on ammonia and glutamine decreases the expression of many nitrogen catabolic genes to low levels. To discriminate between ammonia- and glutamine-driven repression of GAP1, PUT4, GDH1 and GLN1, a gln1-37 mutant was used. This mutant is not able to convert ammonia into glutamine. Glutamine-limited continuous cultures were used to completely derepress the expression of GAP1, PUT4, GDH1 and GLN1. Following an ammonia pulse, the expression of GAP1, PUT4 and GDH1 decreased while the intracellular glutamine concentration remained constant, both in the cytoplasm and in the vacuole. Therefore, it was concluded that ammonia causes gene repression independent of the intracellular glutamine concentration. The expression of GLN1 was not decreased by an ammonia pulse but solely by a glutamine pulse. Analysis of the mRNA levels of ILV5 and HIS4 showed that the response of the two biosynthetic genes, GDH1 and GLN1, to ammonia and glutamine in the wild-type and gln1-37 was not due to changes in general transcription of biosynthetic genes. Ure2p has been shown to be an essential element for nitrogen-regulated gene expression. Deletion of URE2 in the gln1-37 background prevented repression of gene expression by ammonia, showing that the ammonia-induced repression is not caused by a general stress response but represents a specific signal for nitrogen catabolite regulation., UL https://www.microbiologyresearch.org/content/journal/micro/10.1099/00221287-144-5-1451