<it>-In silico </it>functional characterization of a double histone fold domain from the <it>Heliothis zea </it>virus 1

<p>Abstract</p> <p>Background</p> <p>Histones are short proteins involved in chromatin packaging; in eukaryotes, two H2a-H2b and H3-H4 histone dimers form the nucleosomal core, which acts as the fundamental DNA-packaging element. The double histone fold is a rare globul...

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Main Authors: De Gioia Luca, Fantucci Piercarlo, Greco Claudio
Format: Article
Language:English
Published: BMC 2005-12-01
Series:BMC Bioinformatics
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spelling doaj-f160c5a01be645c59c2cc7c6601658b12020-11-24T21:16:17ZengBMCBMC Bioinformatics1471-21052005-12-016Suppl 4S1510.1186/1471-2105-6-S4-S15<it>-In silico </it>functional characterization of a double histone fold domain from the <it>Heliothis zea </it>virus 1De Gioia LucaFantucci PiercarloGreco Claudio<p>Abstract</p> <p>Background</p> <p>Histones are short proteins involved in chromatin packaging; in eukaryotes, two H2a-H2b and H3-H4 histone dimers form the nucleosomal core, which acts as the fundamental DNA-packaging element. The double histone fold is a rare globular protein fold in which two consecutive regions characterized by the typical structure of histones assemble together, thus originating a histone pseudodimer. This fold is included in a few prokaryotic histones and in the regulatory region of guanine nucleotide exchange factors of the Sos family. For the prokaryotic histones, there is no direct structural counterpart in the nucleosomal core particle, while the pseudodimer from Sos proteins is very similar to the dimer formed by histones H2a and H2b</p> <p>Results</p> <p>The absence of a H3-H4-like histone pseudodimer in the available structural databases prompted us to search for proteins that could assume such fold. The application of several secondary structure prediction and fold recognition methods allowed to show that the viral protein gi|22788712 is compatible with the structure of a H3-H4-like histone pseudodimer. Further <it>in silico </it>analyses revealed that this protein module could retain the ability of mediating protein-DNA interactions, and could consequently act as a DNA-binding domain.</p> <p>Conclusion</p> <p>Our results suggest a possible functional role in viral pathogenicity for this novel double histone fold domain; thus, the computational analyses here reported will be helpful in directing future biochemical studies on gi|22788712 protein.</p>
collection DOAJ
language English
format Article
sources DOAJ
author De Gioia Luca
Fantucci Piercarlo
Greco Claudio
spellingShingle De Gioia Luca
Fantucci Piercarlo
Greco Claudio
<it>-In silico </it>functional characterization of a double histone fold domain from the <it>Heliothis zea </it>virus 1
BMC Bioinformatics
author_facet De Gioia Luca
Fantucci Piercarlo
Greco Claudio
author_sort De Gioia Luca
title <it>-In silico </it>functional characterization of a double histone fold domain from the <it>Heliothis zea </it>virus 1
title_short <it>-In silico </it>functional characterization of a double histone fold domain from the <it>Heliothis zea </it>virus 1
title_full <it>-In silico </it>functional characterization of a double histone fold domain from the <it>Heliothis zea </it>virus 1
title_fullStr <it>-In silico </it>functional characterization of a double histone fold domain from the <it>Heliothis zea </it>virus 1
title_full_unstemmed <it>-In silico </it>functional characterization of a double histone fold domain from the <it>Heliothis zea </it>virus 1
title_sort <it>-in silico </it>functional characterization of a double histone fold domain from the <it>heliothis zea </it>virus 1
publisher BMC
series BMC Bioinformatics
issn 1471-2105
publishDate 2005-12-01
description <p>Abstract</p> <p>Background</p> <p>Histones are short proteins involved in chromatin packaging; in eukaryotes, two H2a-H2b and H3-H4 histone dimers form the nucleosomal core, which acts as the fundamental DNA-packaging element. The double histone fold is a rare globular protein fold in which two consecutive regions characterized by the typical structure of histones assemble together, thus originating a histone pseudodimer. This fold is included in a few prokaryotic histones and in the regulatory region of guanine nucleotide exchange factors of the Sos family. For the prokaryotic histones, there is no direct structural counterpart in the nucleosomal core particle, while the pseudodimer from Sos proteins is very similar to the dimer formed by histones H2a and H2b</p> <p>Results</p> <p>The absence of a H3-H4-like histone pseudodimer in the available structural databases prompted us to search for proteins that could assume such fold. The application of several secondary structure prediction and fold recognition methods allowed to show that the viral protein gi|22788712 is compatible with the structure of a H3-H4-like histone pseudodimer. Further <it>in silico </it>analyses revealed that this protein module could retain the ability of mediating protein-DNA interactions, and could consequently act as a DNA-binding domain.</p> <p>Conclusion</p> <p>Our results suggest a possible functional role in viral pathogenicity for this novel double histone fold domain; thus, the computational analyses here reported will be helpful in directing future biochemical studies on gi|22788712 protein.</p>
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