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In vitro construction of the tufB-lacZ fusion: analysis of the regulatory mechanism of tufB promoter
Authors:Y Takebe  Y Kaziro
Institution:(1) Department of Physiological Chemistry, University of Wisconsin, 53706 Madison, WI, USA;(2) Present address: Department of Microbiology, Mayo Hospital, University of Minnesota, 55455 Minneapolis, Minnesota, USA;(3) Present address: Institute of Biochemistry and Biophysics, Polish Academy of Sciences, U1. Rakowiecka 36, PL-02-532 Warszawa, Poland
Abstract:Summary Genetic studies suggest that the so-called ldquophosphorus-family of enzymes inN. crassa are controlled by a complex system of regulatory genes which are responsive to the level of phosphorus in the growth medium. The intracellular metabolite(s) that interact with this system to signal changes in the external phosphorus concentration has not been identified. In this study the pools of acid-soluble, phosphorus-containing, compounds are measured in wild-type and ldquophosphorus-familyrdquo enzyme regulatory mutant strains ofN. crassa before and during phosphorus starvation.Prolonged phosphorus starvation of wild-typeN. crassa failed to alter significantly the pre-starvation level of intracellular orthophosphate, suggesting that intracellular Pi would be a poor effector signal for the control of the phosphorus family enzymes. However, inorganic pyrophosphate (PPi) decreased 15-fold, and tri- and tetrapolyphosphate (PPPi and PPPPi) increased 3- to 5-fold within 15 minutes after transfer of the wild-type strain to phosphorus-free medium. Phosphate starvation of seven different regulatory gene mutant strains resulted in a rapid decrease in the PPi pool similar to that which occurred in the wild-type. However, only two of these seven strains showed increased PPPi and PPPPi pools following phosphate starvation. Additional experiments demonstrated that PPi pools, but not PPPi and PPPPi pools, were unaffected by several starvation regimens other than phosphorus starvation. Metabolic studies employing H3 32PO4 showed that the pool of PPi was labeled to steady-state levels after two minutes of continuous labeling of a phosphate-sufficient culture. Furthermore, long-term steady-state labeling showed that the intracellular PPi pool was directly responsive to the decrease in the extracellular Pi concentration of the medium resulting from cell growth. Growth on phosphoethanolamine, a phosphorus source that allows a modest degree of derepression even in growing cells, resulted in lower levels of PPi than were seen in phosphate-grown cells. These observations suggest that PPi may be involved in the mechanism responsible for the control of phosphorus-family enzyme regulatory gene product activity.
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