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Polycation-π Interactions Are a Driving Force for Molecular Recognition by an Intrinsically Disordered Oncoprotein Family
Authors
A Arvand
A Bertolotti
+87 more
A Bhattacherjee
A Boro
A Zarrine-Afsar
AB Sigalov
AG Turjanski
AH Mao
AH Mao
AK Dunker
AS Mahadevi
AS Reddy
AS Reddy
AY Tan
BA Shoemaker
C Haynes
D Alex
D Vijay
ED Ross
F Jin
G Gill
GM Lee
Guanghong Wei
HJ Dyson
HS Ashbaugh
HS Chan
HS Chan
Hue Sun Chan
HV Erkizan
HV Erkizan
I Staneva
J Danielsson
J Kim
J Singh
J Wang
J Wang
JC Hansen
JC Ma
JF Rual
Jianhui Song
JMR Baker
JP Gallivan
JP Gallivan
JS Barber-Rotenberg
JS Rao
JW Caldwell
Kevin A. W. Lee
KP Ng
KP Ng
KP Ng
L Feng
LM Iakoucheva
LM Salonen
M Azuma
M Borg
M Fuxreiter
M Levitt
MA Pufall
MS Cortese
MS Marshall
P Nash
P Tompa
P Tompa
PB Crowley
Peter Tompa
PJ Grohar
Q Lu
R Bachmaier
R Janknecht
R Petermann
R Wu
S Abeln
Sheung Chun Ng
SK Burley
SM Butterfield
T Mittag
T Mittag
V Neduva
VJ Hilser
VN Uversky
W Wang
W Zhong
X Chu
X Chu
X Xiu
Y Huang
Y Huang
Y Huang
Z Zhang
Publication date
1 January 2013
Publisher
'Public Library of Science (PLoS)'
Doi
View
on
PubMed
Abstract
Molecular recognition by intrinsically disordered proteins (IDPs) commonly involves specific localized contacts and target-induced disorder to order transitions. However, some IDPs remain disordered in the bound state, a phenomenon coined "fuzziness", often characterized by IDP polyvalency, sequence-insensitivity and a dynamic ensemble of disordered bound-state conformations. Besides the above general features, specific biophysical models for fuzzy interactions are mostly lacking. The transcriptional activation domain of the Ewing's Sarcoma oncoprotein family (EAD) is an IDP that exhibits many features of fuzziness, with multiple EAD aromatic side chains driving molecular recognition. Considering the prevalent role of cation-π interactions at various protein-protein interfaces, we hypothesized that EAD-target binding involves polycation- π contacts between a disordered EAD and basic residues on the target. Herein we evaluated the polycation-π hypothesis via functional and theoretical interrogation of EAD variants. The experimental effects of a range of EAD sequence variations, including aromatic number, aromatic density and charge perturbations, all support the cation-π model. Moreover, the activity trends observed are well captured by a coarse-grained EAD chain model and a corresponding analytical model based on interaction between EAD aromatics and surface cations of a generic globular target. EAD-target binding, in the context of pathological Ewing's Sarcoma oncoproteins, is thus seen to be driven by a balance between EAD conformational entropy and favorable EAD-target cation-π contacts. Such a highly versatile mode of molecular recognition offers a general conceptual framework for promiscuous target recognition by polyvalent IDPs. © 2013 Song et al
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