Role of the XPA protein in the NER pathway: A perspective on the function of structural disorder in macromolecular assembly
Lack of structure is often an essential functional feature of protein domains. The coordination of macromolecular assemblies in DNA repair pathways is yet another task disordered protein regions are highly implicated in. Here I review the available experimental and computational data and within this...
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doaj-fc3ee25b158b436e943d9599304885632020-11-24T22:13:33ZengElsevierComputational and Structural Biotechnology Journal2001-03702016-01-0114C788510.1016/j.csbj.2015.11.007Role of the XPA protein in the NER pathway: A perspective on the function of structural disorder in macromolecular assemblyElisa FaddaLack of structure is often an essential functional feature of protein domains. The coordination of macromolecular assemblies in DNA repair pathways is yet another task disordered protein regions are highly implicated in. Here I review the available experimental and computational data and within this context discuss the functional role of structure and disorder in one of the essential scaffolding proteins in the nucleotide excision repair (NER) pathway, namely Xeroderma pigmentosum complementation group A (XPA). From the analysis of the current knowledge, in addition to protein–protein docking and secondary structure prediction results presented for the first time herein, a mechanistic framework emerges, where XPA builds the NER pre-incision complex in a modular fashion, as “beads on a string”, where the protein–protein interaction “beads”, or modules, are interconnected by disordered link regions. This architecture is ideal to avoid the expected steric hindrance constraints of the DNA expanded bubble. Finally, the role of the XPA structural disorder in binding affinity modulation and in the sequential binding of NER core factors in the pre-incision complex is also discussed.http://www.sciencedirect.com/science/article/pii/S2001037015300131Structurally disordered protein domainsNucleotide Excision Repair (XPA)NER pre-incision complexBeads-on-a-string multiprotein complexXPARPAERCC1-XPFConformational selectionMolecular recognition |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Elisa Fadda |
spellingShingle |
Elisa Fadda Role of the XPA protein in the NER pathway: A perspective on the function of structural disorder in macromolecular assembly Computational and Structural Biotechnology Journal Structurally disordered protein domains Nucleotide Excision Repair (XPA) NER pre-incision complex Beads-on-a-string multiprotein complex XPA RPA ERCC1-XPF Conformational selection Molecular recognition |
author_facet |
Elisa Fadda |
author_sort |
Elisa Fadda |
title |
Role of the XPA protein in the NER pathway: A perspective on the function of structural disorder in macromolecular assembly |
title_short |
Role of the XPA protein in the NER pathway: A perspective on the function of structural disorder in macromolecular assembly |
title_full |
Role of the XPA protein in the NER pathway: A perspective on the function of structural disorder in macromolecular assembly |
title_fullStr |
Role of the XPA protein in the NER pathway: A perspective on the function of structural disorder in macromolecular assembly |
title_full_unstemmed |
Role of the XPA protein in the NER pathway: A perspective on the function of structural disorder in macromolecular assembly |
title_sort |
role of the xpa protein in the ner pathway: a perspective on the function of structural disorder in macromolecular assembly |
publisher |
Elsevier |
series |
Computational and Structural Biotechnology Journal |
issn |
2001-0370 |
publishDate |
2016-01-01 |
description |
Lack of structure is often an essential functional feature of protein domains. The coordination of macromolecular assemblies in DNA repair pathways is yet another task disordered protein regions are highly implicated in. Here I review the available experimental and computational data and within this context discuss the functional role of structure and disorder in one of the essential scaffolding proteins in the nucleotide excision repair (NER) pathway, namely Xeroderma pigmentosum complementation group A (XPA). From the analysis of the current knowledge, in addition to protein–protein docking and secondary structure prediction results presented for the first time herein, a mechanistic framework emerges, where XPA builds the NER pre-incision complex in a modular fashion, as “beads on a string”, where the protein–protein interaction “beads”, or modules, are interconnected by disordered link regions. This architecture is ideal to avoid the expected steric hindrance constraints of the DNA expanded bubble. Finally, the role of the XPA structural disorder in binding affinity modulation and in the sequential binding of NER core factors in the pre-incision complex is also discussed. |
topic |
Structurally disordered protein domains Nucleotide Excision Repair (XPA) NER pre-incision complex Beads-on-a-string multiprotein complex XPA RPA ERCC1-XPF Conformational selection Molecular recognition |
url |
http://www.sciencedirect.com/science/article/pii/S2001037015300131 |
work_keys_str_mv |
AT elisafadda roleofthexpaproteininthenerpathwayaperspectiveonthefunctionofstructuraldisorderinmacromolecularassembly |
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