Mutations in NADH:ubiquinone oxidoreductase of Escherichia coli affect growth on mixed amino acids
- 1 April 1994
- journal article
- research article
- Published by American Society for Microbiology in Journal of Bacteriology
- Vol. 176 (8) , 2143-2150
- https://doi.org/10.1128/jb.176.8.2143-2150.1994
Abstract
We isolated and characterized mutants defective in nuo, encoding NADH dehydrogenase I, the multisubunit complex homologous to eucaryotic mitochondrial complex I. By Southern hybridization and/or sequence analysis, we characterized three distinct mutations: a polar insertion designated nuoG::Tn10-1, a nonpolar insertion designated nuoF::Km-1, and a large deletion designated delta(nuoFGHIJKL)-1. Cells carrying any of these three mutations exhibited identical phenotypes. Each mutant exhibited reduced NADH oxidase activity, grew poorly on minimal salts medium containing acetate as the sole carbon source, and failed to produce the inner, L-aspartate chemotactic band on tryptone swarm plates. During exponential growth in tryptone broth, nuo mutants grew as rapidly as wild-type cells and excreted similar amounts of acetate into the medium. As they began the transition to stationary phase, in contrast to wild-type cells, the mutant cells abruptly slowed their growth and continued to excrete acetate. The growth defect was entirely suppressed by L-serine or D-pyruvate, partially suppressed by alpha-ketoglutarate or acetate, and not suppressed by L-aspartate or L-glutamate. We extended these studies, analyzing the sequential consumption of amino acids by both wild-type and nuo mutant cells growing in tryptone broth. During the lag and exponential phases, both wild-type and mutant cells consumed, in order, L-serine and L-aspartate. As they began the transition to stationary phase, both cell types consumed L-tryptophan. Whereas wild-type cells then consumed L-glutamate, glycine, L-threonine, and L-alanine, mutant cells utilized these amino acids poorly. We propose that cells defective for NADH dehydrogenase I exhibit all these phenotypes, because large NADH/NAD+ ratios inhibit certain tricarboxylic acid cycle enzymes, e.g., citrate synthase and malate dehydrogenase.Keywords
This publication has 53 references indexed in Scilit:
- Detection of specific sequences among DNA fragments separated by gel electrophoresisPublished by Elsevier ,2006
- DNA Conformation Induced by the Bacteriophage T4 UvsX Protein Appears Identical to the Conformation Induced by the Escherichia coli RecA ProteinJournal of Molecular Biology, 1993
- Purification of NADH-ferricyanide dehydrogenase and NADH-quinone reductase from Escherichia coli membranes and their roles in the respiratory chainBiochimica et Biophysica Acta (BBA) - Bioenergetics, 1989
- NADH-ubiquinone oxidoreductases of the Escherichia coli aerobic respiratory chainBiochemistry, 1987
- The aerobic respiratory chain of Escherichia coliTrends in Biochemical Sciences, 1987
- D-Lactate oxidation and generation of the proton electrochemical gradient in membrane vesicles from Escherichia coli GR19N and in proteoliposomes reconstituted with purified D-lactate dehydrogenase and cytochrome o oxidaseBiochemistry, 1986
- Amino Acid Biosynthesis and its RegulationAnnual Review of Biochemistry, 1978
- The Enzymic Interconversion of Acetate and Acetyl-coenzyme A in Escherichia coliJournal of General Microbiology, 1977
- Role of quinones in electron transport to oxygen and nitrate in Escherichia coli. Studies with a ubiA− menA− double quinone mutantBiochimica et Biophysica Acta (BBA) - Bioenergetics, 1977
- Mutations affecting the reduced nicotinamide adenine dinucleotide dehydrogenase complex of Escherichia coliBiochimica et Biophysica Acta (BBA) - Bioenergetics, 1976