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PMID: 5788705 Published · ppublish English Journal Article

Methylammonium resistance in Aspergillus nidulans.

Journal of bacteriology ·Vol. 98 ·No. 3 ·1969-06-00 ·Pages 1284-93

Arst HN, Cove DJ

Abstract

Mutants of Aspergillus nidulans resistant to methylammonium toxicity are simultaneously derepressed in the presence of ammonium for apparently all ammonium-repressible activities. Enzyme assays directly demonstrate derepression of nitrate, nitrite, and hydroxylamine reductases, xanthine dehydrogenase, urate oxidase, and allantoinase, whereas in vivo tests show that ammonium and methylammonium repression or inhibition (or both) is relieved in these mutants in pathways of nitrate assimilation, purine transport and degradation, and amino acid, amine, and amide catabolism. Ammonium and methylammonium uptake is apparently not defective in these mutants, for they grow normally on limiting levels of these ions as sole nitrogen source. There is no evidence that more than one gene can mutate to produce the methylammonium resistance (mea(R)) phenotype. Such mutations are semidominant in both heterocaryons and diploids. The ability of mea(R) mutations to effect derepression of activities specified by genes within another nucleus in a heterocaryon shows that the action of the mea product is not restricted to the nucleus. Three types of hypotheses might explain this generalized derepression. First, ammonium and methylammonium might not themselves be co-repressors but might require a metabolic conversion, blocked in these mutants, to become co-repressors. Secondly, the mea locus might specify an activity expressed in mea(R) but not wild-type (mea(S)) strains, which diminishes the concentration of ammonium and methylammonium participating in co-repression. Finally, ammonium repression might involve a macromolecular control element specified by the mea(R) locus and common to many or all ammonium-repressible systems. The existence of "regulation reversal mutations" at the mea(R) locus and the lack of uniformity and coordination with which different enzymatic activities respond to mutational derepression is most compatible with the last type of hypothesis.

MeSH Terms
Allantoin/pharmacology Amidohydrolases/metabolism Aspergillus/drug effects,metabolism Azaguanine/pharmacology Bromine/pharmacology Cell Nucleus Chlorine/pharmacology Diploidy Drug Resistance, Microbial Enzyme Induction Enzyme Repression Genes Genes, Dominant Genetics, Microbial Hydroxylamines Molecular Biology Mutation Nitrates/metabolism Nitrites Oxidoreductases/metabolism Purines/pharmacology Quaternary Ammonium Compounds/metabolism,pharmacology Selection, Genetic Urate Oxidase/metabolism Uric Acid/pharmacology Xanthines
Chemicals
Hydroxylamines Nitrates Nitrites Purines Quaternary Ammonium Compounds Xanthines Uric Acid Allantoin Chlorine Oxidoreductases Urate Oxidase Amidohydrolases Azaguanine Bromine
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Arst H N
Cove D J
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22 references, click to expand
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Article Info
Journal
Journal of bacteriology
Abbr.
J Bacteriol
ISSN
0021-9193
Published
1969-06-00
Pages
1284-93
Language
English
Region
United States
NLM ID
2985120R
PMCID
PMC315326
Subset
IM
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