Graded expression of zinc-responsive genes through two regulatory zinc-binding sites in Zur SCIE SCOPUS

Cited 100 time in WEB OF SCIENCE Cited 105 time in Scopus
Title
Graded expression of zinc-responsive genes through two regulatory zinc-binding sites in Zur
Author(s)
Shin, Jung-Ho; Jung, Hoi Jong; An, Young Jun; Cho, Yoo-Bok; Cha, Sun-Shin; Roe, Jung-Hye
KIOST Author(s)
An, Young Jun(안영준)
Alternative Author(s)
안영준; 차선신
Publication Year
2011-03-22
Abstract
Zinc is one of the essential transition metals in cells. Excess or lack of zinc is detrimental, and cells exploit highly sensitive zinc-binding regulators to achieve homeostasis. In this article, we present a crystal structure of active Zur from Streptomyces coelicolor with three zinc-binding sites (C-, M-, and D-sites). Mutations of the three sites differentially affected sporulation and transcription of target genes, such that C-and M-site mutations inhibited sporulation and derepressed all target genes examined, whereas D-site mutations did not affect sporulation and derepressed only a sensitive gene. Biochemical and spectroscopic analyses of representative metal site mutants revealed that the C-site serves a structural role, whereas the M-and D-sites regulate DNA-binding activity as an on-off switch and a fine-tuner, respectively. Consistent with differential effect of mutations on target genes, zinc chelation by TPEN derepressed some genes (znuA, rpmF2) more sensitively than others (rpmG2, SCO7682) in vivo. Similar pattern of TPEN-sensitivity was observed for Zur-DNA complexes formed on different promoters in vitro. The sensitive promoters bound Zur with lower affinity than the less sensitive ones. EDTA-treated apo-Zur gained its DNA binding activity at different concentrations of added zinc for the two promoter groups, corresponding to free zinc concentrations of 4.5 x 10(-16) M and 7.9 x 10(-16) M for the less sensitive and sensitive promoters, respectively. The graded expression of target genes is a clever outcome of subtly modulating Zur-DNA binding affinities in response to zinc availability. It enables bacteria to detect metal depletion with improved sensitivity and optimize gene-expression pattern.
ISSN
0027-8424
URI
https://sciwatch.kiost.ac.kr/handle/2020.kiost/3882
DOI
10.1073/pnas.1017744108
Bibliographic Citation
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, v.108, no.12, pp.5045 - 5050, 2011
Publisher
NATL ACAD SCIENCES
Subject
FERRIC UPTAKE REGULATOR; SHOCK SIGMA-FACTOR; ESCHERICHIA-COLI; BACILLUS-SUBTILIS; CRYSTAL-STRUCTURE; MYCOBACTERIUM-TUBERCULOSIS; STREPTOMYCES-COELICOLOR; DEPENDENT DIMERIZATION; RIBOSOMAL-PROTEINS; HOMEOSTASIS
Keywords
ferric uptake regulator; graded transcription regulation; regulatory metal
Type
Article
Language
English
Document Type
Article
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