Insights into Hox protein function from a large scale combinatorial analysis of protein domains.

Protein function is encoded within protein sequence and protein domains. However, how protein domains cooperate within a protein to modulate overall activity and how this impacts functional diversification at the molecular and organism levels remains largely unaddressed. Focusing on three domains of...

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Main Authors: Samir Merabet, Isma Litim-Mecheri, Daniel Karlsson, Richa Dixit, Mehdi Saadaoui, Bruno Monier, Christine Brun, Stefan Thor, K Vijayraghavan, Laurent Perrin, Jacques Pradel, Yacine Graba
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2011-10-01
Series:PLoS Genetics
Online Access:http://europepmc.org/articles/PMC3203194?pdf=render
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spelling doaj-2e20ee60cd6842bcbb06769da72ecae12020-11-24T21:41:38ZengPublic Library of Science (PLoS)PLoS Genetics1553-73901553-74042011-10-01710e100230210.1371/journal.pgen.1002302Insights into Hox protein function from a large scale combinatorial analysis of protein domains.Samir MerabetIsma Litim-MecheriDaniel KarlssonRicha DixitMehdi SaadaouiBruno MonierChristine BrunStefan ThorK VijayraghavanLaurent PerrinJacques PradelYacine GrabaProtein function is encoded within protein sequence and protein domains. However, how protein domains cooperate within a protein to modulate overall activity and how this impacts functional diversification at the molecular and organism levels remains largely unaddressed. Focusing on three domains of the central class Drosophila Hox transcription factor AbdominalA (AbdA), we used combinatorial domain mutations and most known AbdA developmental functions as biological readouts to investigate how protein domains collectively shape protein activity. The results uncover redundancy, interactivity, and multifunctionality of protein domains as salient features underlying overall AbdA protein activity, providing means to apprehend functional diversity and accounting for the robustness of Hox-controlled developmental programs. Importantly, the results highlight context-dependency in protein domain usage and interaction, allowing major modifications in domains to be tolerated without general functional loss. The non-pleoitropic effect of domain mutation suggests that protein modification may contribute more broadly to molecular changes underlying morphological diversification during evolution, so far thought to rely largely on modification in gene cis-regulatory sequences.http://europepmc.org/articles/PMC3203194?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Samir Merabet
Isma Litim-Mecheri
Daniel Karlsson
Richa Dixit
Mehdi Saadaoui
Bruno Monier
Christine Brun
Stefan Thor
K Vijayraghavan
Laurent Perrin
Jacques Pradel
Yacine Graba
spellingShingle Samir Merabet
Isma Litim-Mecheri
Daniel Karlsson
Richa Dixit
Mehdi Saadaoui
Bruno Monier
Christine Brun
Stefan Thor
K Vijayraghavan
Laurent Perrin
Jacques Pradel
Yacine Graba
Insights into Hox protein function from a large scale combinatorial analysis of protein domains.
PLoS Genetics
author_facet Samir Merabet
Isma Litim-Mecheri
Daniel Karlsson
Richa Dixit
Mehdi Saadaoui
Bruno Monier
Christine Brun
Stefan Thor
K Vijayraghavan
Laurent Perrin
Jacques Pradel
Yacine Graba
author_sort Samir Merabet
title Insights into Hox protein function from a large scale combinatorial analysis of protein domains.
title_short Insights into Hox protein function from a large scale combinatorial analysis of protein domains.
title_full Insights into Hox protein function from a large scale combinatorial analysis of protein domains.
title_fullStr Insights into Hox protein function from a large scale combinatorial analysis of protein domains.
title_full_unstemmed Insights into Hox protein function from a large scale combinatorial analysis of protein domains.
title_sort insights into hox protein function from a large scale combinatorial analysis of protein domains.
publisher Public Library of Science (PLoS)
series PLoS Genetics
issn 1553-7390
1553-7404
publishDate 2011-10-01
description Protein function is encoded within protein sequence and protein domains. However, how protein domains cooperate within a protein to modulate overall activity and how this impacts functional diversification at the molecular and organism levels remains largely unaddressed. Focusing on three domains of the central class Drosophila Hox transcription factor AbdominalA (AbdA), we used combinatorial domain mutations and most known AbdA developmental functions as biological readouts to investigate how protein domains collectively shape protein activity. The results uncover redundancy, interactivity, and multifunctionality of protein domains as salient features underlying overall AbdA protein activity, providing means to apprehend functional diversity and accounting for the robustness of Hox-controlled developmental programs. Importantly, the results highlight context-dependency in protein domain usage and interaction, allowing major modifications in domains to be tolerated without general functional loss. The non-pleoitropic effect of domain mutation suggests that protein modification may contribute more broadly to molecular changes underlying morphological diversification during evolution, so far thought to rely largely on modification in gene cis-regulatory sequences.
url http://europepmc.org/articles/PMC3203194?pdf=render
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