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Interplay of Protein and DNA Structure Revealed in Simulations of the lac Operon
Authors
A Balaeff
A Balaeff
+74 more
A Bolshoy
AD Hirsh
AM Friedman
AR Haeusler
BD Coleman
CAEM Spronk
CE Bell
D Sagi
D Skoko
D Swigon
D Swigon
David Swigon
DS Horowitz
E Villa
EF Pettersen
F Vanzi
FR Blattner
G La Penna
GC Ruben
H Jacobson
J Müller
J Romanuka
J Vreede
JR Sadler
K Virnik
KAE Stenberg
KB Towles
KK Swinger
KK Swinger
KK Swinger
L Czapla
L Czapla
L Czapla
L Finzi
L Han
L Saiz
LM Bond
LM Edelman
Luke Czapla
M Berger
M Geanacopoulos
M Lewis
M Taraban
MA El Hassan
Michael A. Grosner
N Clauvelin
NA Becker
NA Becker
OK Wong
PJ Heath
RA Mehta
RE Dickerson
S Goyal
S Semsey
S Stella
S Sundararaj
T Aki
T Ali Azam
TD Lillian
TN Cordeiro
TT Paull
Valentin V. Rybenkov
VB Zhurkin
W Gilbert
W Wang
Wilma K. Olson
WK Olson
WK Olson
X-J Lu
XJ Lu
Y Hodges-Garcia
Y Zhang
Y Zhang
Z Alexandrowicz
Publication date
1 January 2013
Publisher
'Public Library of Science (PLoS)'
Doi
View
on
PubMed
Abstract
The E. coli Lac repressor is the classic textbook example of a protein that attaches to widely spaced sites along a genome and forces the intervening DNA into a loop. The short loops implicated in the regulation of the lac operon suggest the involvement of factors other than DNA and repressor in gene control. The molecular simulations presented here examine two likely structural contributions to the in-vivo looping of bacterial DNA: the distortions of the double helix introduced upon association of the highly abundant, nonspecific nucleoid protein HU and the large-scale deformations of the repressor detected in low-resolution experiments. The computations take account of the three-dimensional arrangements of nucleotides and amino acids found in crystal structures of DNA with the two proteins, the natural rest state and deformational properties of protein-free DNA, and the constraints on looping imposed by the conformation of the repressor and the orientation of bound DNA. The predicted looping propensities capture the complex, chain-length-dependent variation in repression efficacy extracted from gene expression studies and in vitro experiments and reveal unexpected chain-length-dependent variations in the uptake of HU, the deformation of repressor, and the folding of DNA. Both the opening of repressor and the presence of HU, at levels approximating those found in vivo, enhance the probability of loop formation. HU affects the global organization of the repressor and the opening of repressor influences the levels of HU binding to DNA. The length of the loop determines whether the DNA adopts antiparallel or parallel orientations on the repressor, whether the repressor is opened or closed, and how many HU molecules bind to the loop. The collective behavior of proteins and DNA is greater than the sum of the parts and hints of ways in which multiple proteins may coordinate the packaging and processing of genetic information. © 2013 Czapla et al
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