Characterization of FNR* mutant proteins indicates two distinct mechanisms for altering oxygen regulation of the Escherichia coli transcription factor FNR

Author:

Bates D M1,Lazazzera B A1,Kiley P J1

Affiliation:

1. Department of Bacteriology, University of Wisconsin, Madison 53706, USA.

Abstract

In order to gain insight into the mechanism by which the Escherichia coli transcription factor FNR* is activated in response to anaerobiosis, we have analyzed FNR mutant proteins which, unlike the wild-type protein, stimulate gene expression in the presence of oxygen in vivo. Cell extracts containing seven different FNR* mutant proteins were tested in vitro for the ability to bind to the FNR consensus DNA site in a gel retardation assay under aerobic conditions. At the concentration of protein tested, only extracts which contained FNR* mutant proteins with amino acid substitutions at position 154 showed significant DNA binding. The three position-154 FNR* mutant proteins could be further distinguished from the other mutant proteins by analysis of the in vivo phenotypes of FNR* proteins containing amino acid substitutions at either of two essential cysteine residues. In the presence of oxygen, FNR* mutant proteins with amino acid substitutions at position 154 were the least affected when either Cys-23 or Cys-122 was substituted for Ser. On the basis of these in vivo and in vitro analyses, FNR* mutant proteins appear to segregate into at least two classes. Thus, it appears that each class of FNR* substitutions alters the normal pathway of FNR activation in response to oxygen deprivation by a different mechanism.

Publisher

American Society for Microbiology

Subject

Molecular Biology,Microbiology

Reference30 articles.

1. Sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding;Bradford M. M.;Anal. Biochem.,1976

2. Construction and characterization of amplifiable multicopy DNA cloning vehicles derived from the P15A cryptic miniplasmid;Chang A. C. Y.;J. Bacteriol.,1978

3. Coen D. M. 1991. Enzymatic amplification of DNA by PCR: standard procedures and optimization p. 15.1.1-15.1.7. In F. M. Ausubel R. Brent R. E. Kingston D. D. Moore J. G. Seidman J. A. Smith and K. Struhl (ed.) Current protocols in molecular biology vol. 2. John Wiley and Sons New York.

4. A role for iron in transcriptional activation by FNR;Green J.;FEBS Lett.,1993

5. Activation of FNR-dependent transcription by iron: an in vitro switch for FNR;Green J.;FEMS Microbiol. Lett.,1993

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