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Reversible adenylylation of glutamine synthetase is dynamically counterbalanced during steady-state growth of Escherichia coli
Authors:Okano Hiroyuki  Hwa Terence  Lenz Peter  Yan Dalai
Institution:
  • 1 Department of Microbiology and Immunology, Indiana University School of Medicine, 635 Barnhill Drive, MS420, Indianapolis, IN 46202-5120, USA
  • 2 Department of Physics and Center for Theoretical Biological Physics, University of California at San Diego, La Jolla, CA 92093, USA
  • 3 Department of Physics and Center for Synthetic Microbiology, University of Marburg, Marburg 35032, Germany
  • Abstract:Glutamine synthetase (GS) is the central enzyme for nitrogen assimilation in Escherichia coli and is subject to reversible adenylylation (inactivation) by a bifunctional GS adenylyltransferase/adenylyl-removing enzyme (ATase). In vitro, both of the opposing activities of ATase are regulated by small effectors, most notably glutamine and 2-oxoglutarate. In vivo, adenylyltransferase (AT) activity is critical for growth adaptation when cells are shifted from nitrogen-limiting to nitrogen-excess conditions and a rapid decrease of GS activity by adenylylation is needed. Here, we show that the adenylyl-removing (AR) activity of ATase is required to counterbalance its AT activity during steady-state growth under both nitrogen-excess and nitrogen-limiting conditions. This conclusion was established by studying AR/AT+ mutants, which surprisingly displayed steady-state growth defects in nitrogen-excess conditions due to excessive GS adenylylation. Moreover, GS was abnormally adenylylated in the AR mutants even under nitrogen-limiting conditions, whereas there was little GS adenylylation in wild-type strains. Despite the importance of AR activity, we establish that AT activity is significantly regulated in vivo, mainly by the cellular glutamine concentration. There is good general agreement between quantitative estimates of AT regulation in vivo and results derived from previous in vitro studies except at very low AT activities. We propose additional mechanisms for the low AT activities in vivo. The results suggest that dynamic counterbalance by reversible covalent modification may be a general strategy for controlling the activity of enzymes such as GS, whose physiological output allows adaptation to environmental fluctuations.
    Keywords:GS  glutamine synthetase  ATase  adenylyltransferase/adenylyl-removing enzyme  AT  adenylyltransferase  AR  adenylyl-removing  GOGAT  glutamate synthase  GDH  glutamate dehydrogenase  2OG  2-oxoglutarate
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