The nucleoid protein Dps binds genomic DNA of Escherichia coli in a non-random manner.

Dps is a multifunctional homododecameric protein that oxidizes Fe2+ ions accumulating them in the form of Fe2O3 within its protein cavity, interacts with DNA tightly condensing bacterial nucleoid upon starvation and performs some other functions. During the last two decades from discovery of this pr...

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Main Authors: S S Antipov, M N Tutukina, E V Preobrazhenskaya, F A Kondrashov, M V Patrushev, S V Toshchakov, I Dominova, U S Shvyreva, V V Vrublevskaya, O S Morenkov, N A Sukharicheva, V V Panyukov, O N Ozoline
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2017-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC5553809?pdf=render
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spelling doaj-46c4082a584c4a09949ed6748ce09a222020-11-25T02:27:09ZengPublic Library of Science (PLoS)PLoS ONE1932-62032017-01-01128e018280010.1371/journal.pone.0182800The nucleoid protein Dps binds genomic DNA of Escherichia coli in a non-random manner.S S AntipovM N TutukinaE V PreobrazhenskayaF A KondrashovM V PatrushevS V ToshchakovI DominovaU S ShvyrevaV V VrublevskayaO S MorenkovN A SukharichevaV V PanyukovO N OzolineDps is a multifunctional homododecameric protein that oxidizes Fe2+ ions accumulating them in the form of Fe2O3 within its protein cavity, interacts with DNA tightly condensing bacterial nucleoid upon starvation and performs some other functions. During the last two decades from discovery of this protein, its ferroxidase activity became rather well studied, but the mechanism of Dps interaction with DNA still remains enigmatic. The crucial role of lysine residues in the unstructured N-terminal tails led to the conventional point of view that Dps binds DNA without sequence or structural specificity. However, deletion of dps changed the profile of proteins in starved cells, SELEX screen revealed genomic regions preferentially bound in vitro and certain affinity of Dps for artificial branched molecules was detected by atomic force microscopy. Here we report a non-random distribution of Dps binding sites across the bacterial chromosome in exponentially growing cells and show their enrichment with inverted repeats prone to form secondary structures. We found that the Dps-bound regions overlap with sites occupied by other nucleoid proteins, and contain overrepresented motifs typical for their consensus sequences. Of the two types of genomic domains with extensive protein occupancy, which can be highly expressed or transcriptionally silent only those that are enriched with RNA polymerase molecules were preferentially occupied by Dps. In the dps-null mutant we, therefore, observed a differentially altered expression of several targeted genes and found suppressed transcription from the dps promoter. In most cases this can be explained by the relieved interference with Dps for nucleoid proteins exploiting sequence-specific modes of DNA binding. Thus, protecting bacterial cells from different stresses during exponential growth, Dps can modulate transcriptional integrity of the bacterial chromosome hampering RNA biosynthesis from some genes via competition with RNA polymerase or, vice versa, competing with inhibitors to activate transcription.http://europepmc.org/articles/PMC5553809?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author S S Antipov
M N Tutukina
E V Preobrazhenskaya
F A Kondrashov
M V Patrushev
S V Toshchakov
I Dominova
U S Shvyreva
V V Vrublevskaya
O S Morenkov
N A Sukharicheva
V V Panyukov
O N Ozoline
spellingShingle S S Antipov
M N Tutukina
E V Preobrazhenskaya
F A Kondrashov
M V Patrushev
S V Toshchakov
I Dominova
U S Shvyreva
V V Vrublevskaya
O S Morenkov
N A Sukharicheva
V V Panyukov
O N Ozoline
The nucleoid protein Dps binds genomic DNA of Escherichia coli in a non-random manner.
PLoS ONE
author_facet S S Antipov
M N Tutukina
E V Preobrazhenskaya
F A Kondrashov
M V Patrushev
S V Toshchakov
I Dominova
U S Shvyreva
V V Vrublevskaya
O S Morenkov
N A Sukharicheva
V V Panyukov
O N Ozoline
author_sort S S Antipov
title The nucleoid protein Dps binds genomic DNA of Escherichia coli in a non-random manner.
title_short The nucleoid protein Dps binds genomic DNA of Escherichia coli in a non-random manner.
title_full The nucleoid protein Dps binds genomic DNA of Escherichia coli in a non-random manner.
title_fullStr The nucleoid protein Dps binds genomic DNA of Escherichia coli in a non-random manner.
title_full_unstemmed The nucleoid protein Dps binds genomic DNA of Escherichia coli in a non-random manner.
title_sort nucleoid protein dps binds genomic dna of escherichia coli in a non-random manner.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2017-01-01
description Dps is a multifunctional homododecameric protein that oxidizes Fe2+ ions accumulating them in the form of Fe2O3 within its protein cavity, interacts with DNA tightly condensing bacterial nucleoid upon starvation and performs some other functions. During the last two decades from discovery of this protein, its ferroxidase activity became rather well studied, but the mechanism of Dps interaction with DNA still remains enigmatic. The crucial role of lysine residues in the unstructured N-terminal tails led to the conventional point of view that Dps binds DNA without sequence or structural specificity. However, deletion of dps changed the profile of proteins in starved cells, SELEX screen revealed genomic regions preferentially bound in vitro and certain affinity of Dps for artificial branched molecules was detected by atomic force microscopy. Here we report a non-random distribution of Dps binding sites across the bacterial chromosome in exponentially growing cells and show their enrichment with inverted repeats prone to form secondary structures. We found that the Dps-bound regions overlap with sites occupied by other nucleoid proteins, and contain overrepresented motifs typical for their consensus sequences. Of the two types of genomic domains with extensive protein occupancy, which can be highly expressed or transcriptionally silent only those that are enriched with RNA polymerase molecules were preferentially occupied by Dps. In the dps-null mutant we, therefore, observed a differentially altered expression of several targeted genes and found suppressed transcription from the dps promoter. In most cases this can be explained by the relieved interference with Dps for nucleoid proteins exploiting sequence-specific modes of DNA binding. Thus, protecting bacterial cells from different stresses during exponential growth, Dps can modulate transcriptional integrity of the bacterial chromosome hampering RNA biosynthesis from some genes via competition with RNA polymerase or, vice versa, competing with inhibitors to activate transcription.
url http://europepmc.org/articles/PMC5553809?pdf=render
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