» Articles » PMID: 10608803

DNA Distortion Mechanism for Transcriptional Activation by ZntR, a Zn(II)-responsive MerR Homologue in Escherichia Coli

Overview
Journal J Biol Chem
Specialty Biochemistry
Date 1999 Dec 23
PMID 10608803
Citations 70
Authors
Affiliations
Soon will be listed here.
Abstract

MerR-like DNA distortion mechanisms have been proposed for a variety of stress-responsive transcription factors. The Escherichia coli ZntR protein, a homologue of MerR, has recently been shown to mediate Zn(II)-responsive regulation of zntA, a gene involved in Zn(II) detoxification. To determine whether the MerR DNA distortion mechanism is conserved among MerR family members, we have purified ZntR to homogeneity and shown that it is a zinc receptor that is necessary and sufficient to stimulate Zn-responsive transcription at the zntA promoter. Biochemical, DNA footprinting, and in vitro transcription assays indicate that apo-ZntR binds in the atypical 20-base pair spacer region of the promoter and distorts the DNA in a manner that is similar to apo-MerR. The addition of Zn(II) to ZntR converts it to a transcriptional activator protein that introduces changes in the DNA conformation. These changes apparently make the promoter a better substrate for RNA polymerase. We propose that this zinc-sensing homologue of MerR restructures the target promoter in a manner similar to that of other stress-responsive transcription factors. The ZntR metalloregulatory protein is a direct Zn(II) sensor that catalyzes transcriptional activation of a zinc efflux gene, thus preventing intracellular Zn(II) from exceeding an optimal but as yet unknown concentration.

Citing Articles

A 'through-DNA' mechanism for co-regulation of metal uptake and efflux.

Chakraborty U, Park Y, Sengupta K, Jung W, Joshi C, Francis D Nat Commun. 2024; 15(1):10555.

PMID: 39632925 PMC: 11618457. DOI: 10.1038/s41467-024-55017-z.


Linking the transcriptome to physiology: response of the proteome of Cupriavidus metallidurans to changing metal availability.

Galea D, Herzberg M, Dobritzsch D, Fuszard M, Nies D Metallomics. 2024; 16(12).

PMID: 39562290 PMC: 11647595. DOI: 10.1093/mtomcs/mfae058.


The efflux system CdfX exports zinc that cannot be transported by ZntA in .

Schulz V, Galea D, Schleuder G, Strohmeyer P, Grosse C, Herzberg M J Bacteriol. 2024; 206(11):e0029924.

PMID: 39475293 PMC: 11580412. DOI: 10.1128/jb.00299-24.


ZntA maintains zinc and cadmium homeostasis and promotes oxidative stress resistance and virulence in .

Zheng C, Zhai Y, Qiu J, Wang M, Xu Z, Chen X Gut Microbes. 2024; 16(1):2327377.

PMID: 38466137 PMC: 10936601. DOI: 10.1080/19490976.2024.2327377.


A review of biosensor for environmental monitoring: principle, application, and corresponding achievement of sustainable development goals.

Huang C, Lin C, Nguyen M, Hussain A, Bui X, Ngo H Bioengineered. 2023; 14(1):58-80.

PMID: 37377408 PMC: 10308875. DOI: 10.1080/21655979.2022.2095089.