Cargando…

A specific single-stranded DNA induces a distinct conformational change in the nucleoid-associated protein HU

In prokaryotic cells, genomic DNA forms an aggregated structure with various nucleoid-associated proteins (NAPs). The functions of genomic DNA are cooperatively modulated by NAPs, of which HU is considered to be one of the most important. HU binds double-stranded DNA (dsDNA) and serves as a structur...

Descripción completa

Detalles Bibliográficos
Autores principales: Nishida, Yuya, Ikeya, Teppei, Mikawa, Tsutomu, Inoue, Jin, Ito, Yutaka, Shintani, Yasunori, Masui, Ryoji, Kuramitsu, Seiki, Takashima, Seiji
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5613972/
https://www.ncbi.nlm.nih.gov/pubmed/28955971
http://dx.doi.org/10.1016/j.bbrep.2016.09.014
_version_ 1783266345334341632
author Nishida, Yuya
Ikeya, Teppei
Mikawa, Tsutomu
Inoue, Jin
Ito, Yutaka
Shintani, Yasunori
Masui, Ryoji
Kuramitsu, Seiki
Takashima, Seiji
author_facet Nishida, Yuya
Ikeya, Teppei
Mikawa, Tsutomu
Inoue, Jin
Ito, Yutaka
Shintani, Yasunori
Masui, Ryoji
Kuramitsu, Seiki
Takashima, Seiji
author_sort Nishida, Yuya
collection PubMed
description In prokaryotic cells, genomic DNA forms an aggregated structure with various nucleoid-associated proteins (NAPs). The functions of genomic DNA are cooperatively modulated by NAPs, of which HU is considered to be one of the most important. HU binds double-stranded DNA (dsDNA) and serves as a structural modulator in the genome architecture. It plays important roles in diverse DNA functions, including replication, segregation, transcription and repair. Interestingly, it has been reported that HU also binds single-stranded DNA (ssDNA) regardless of sequence. However, structural analysis of HU with ssDNA has been lacking, and the functional relevance of this binding remains elusive. In this study, we found that ssDNA induced a significant change in the secondary structure of Thermus thermophilus HU (TtHU), as observed by analysis of circular dichroism spectra. Notably, this change in secondary structure was sequence specific, because the complementary ssDNA or dsDNA did not induce the change. Structural analysis using nuclear magnetic resonance confirmed that TtHU and this ssDNA formed a unique structure, which was different from the previously reported structure of HU in complex with dsDNA. Our data suggest that TtHU undergoes a distinct structural change when it associates with ssDNA of a specific sequence and subsequently exerts a yet-to-be-defined function.
format Online
Article
Text
id pubmed-5613972
institution National Center for Biotechnology Information
language English
publishDate 2016
publisher Elsevier
record_format MEDLINE/PubMed
spelling pubmed-56139722017-09-27 A specific single-stranded DNA induces a distinct conformational change in the nucleoid-associated protein HU Nishida, Yuya Ikeya, Teppei Mikawa, Tsutomu Inoue, Jin Ito, Yutaka Shintani, Yasunori Masui, Ryoji Kuramitsu, Seiki Takashima, Seiji Biochem Biophys Rep Research Article In prokaryotic cells, genomic DNA forms an aggregated structure with various nucleoid-associated proteins (NAPs). The functions of genomic DNA are cooperatively modulated by NAPs, of which HU is considered to be one of the most important. HU binds double-stranded DNA (dsDNA) and serves as a structural modulator in the genome architecture. It plays important roles in diverse DNA functions, including replication, segregation, transcription and repair. Interestingly, it has been reported that HU also binds single-stranded DNA (ssDNA) regardless of sequence. However, structural analysis of HU with ssDNA has been lacking, and the functional relevance of this binding remains elusive. In this study, we found that ssDNA induced a significant change in the secondary structure of Thermus thermophilus HU (TtHU), as observed by analysis of circular dichroism spectra. Notably, this change in secondary structure was sequence specific, because the complementary ssDNA or dsDNA did not induce the change. Structural analysis using nuclear magnetic resonance confirmed that TtHU and this ssDNA formed a unique structure, which was different from the previously reported structure of HU in complex with dsDNA. Our data suggest that TtHU undergoes a distinct structural change when it associates with ssDNA of a specific sequence and subsequently exerts a yet-to-be-defined function. Elsevier 2016-10-11 /pmc/articles/PMC5613972/ /pubmed/28955971 http://dx.doi.org/10.1016/j.bbrep.2016.09.014 Text en © 2016 The Authors http://creativecommons.org/licenses/by/4.0/ This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Research Article
Nishida, Yuya
Ikeya, Teppei
Mikawa, Tsutomu
Inoue, Jin
Ito, Yutaka
Shintani, Yasunori
Masui, Ryoji
Kuramitsu, Seiki
Takashima, Seiji
A specific single-stranded DNA induces a distinct conformational change in the nucleoid-associated protein HU
title A specific single-stranded DNA induces a distinct conformational change in the nucleoid-associated protein HU
title_full A specific single-stranded DNA induces a distinct conformational change in the nucleoid-associated protein HU
title_fullStr A specific single-stranded DNA induces a distinct conformational change in the nucleoid-associated protein HU
title_full_unstemmed A specific single-stranded DNA induces a distinct conformational change in the nucleoid-associated protein HU
title_short A specific single-stranded DNA induces a distinct conformational change in the nucleoid-associated protein HU
title_sort specific single-stranded dna induces a distinct conformational change in the nucleoid-associated protein hu
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5613972/
https://www.ncbi.nlm.nih.gov/pubmed/28955971
http://dx.doi.org/10.1016/j.bbrep.2016.09.014
work_keys_str_mv AT nishidayuya aspecificsinglestrandeddnainducesadistinctconformationalchangeinthenucleoidassociatedproteinhu
AT ikeyateppei aspecificsinglestrandeddnainducesadistinctconformationalchangeinthenucleoidassociatedproteinhu
AT mikawatsutomu aspecificsinglestrandeddnainducesadistinctconformationalchangeinthenucleoidassociatedproteinhu
AT inouejin aspecificsinglestrandeddnainducesadistinctconformationalchangeinthenucleoidassociatedproteinhu
AT itoyutaka aspecificsinglestrandeddnainducesadistinctconformationalchangeinthenucleoidassociatedproteinhu
AT shintaniyasunori aspecificsinglestrandeddnainducesadistinctconformationalchangeinthenucleoidassociatedproteinhu
AT masuiryoji aspecificsinglestrandeddnainducesadistinctconformationalchangeinthenucleoidassociatedproteinhu
AT kuramitsuseiki aspecificsinglestrandeddnainducesadistinctconformationalchangeinthenucleoidassociatedproteinhu
AT takashimaseiji aspecificsinglestrandeddnainducesadistinctconformationalchangeinthenucleoidassociatedproteinhu
AT nishidayuya specificsinglestrandeddnainducesadistinctconformationalchangeinthenucleoidassociatedproteinhu
AT ikeyateppei specificsinglestrandeddnainducesadistinctconformationalchangeinthenucleoidassociatedproteinhu
AT mikawatsutomu specificsinglestrandeddnainducesadistinctconformationalchangeinthenucleoidassociatedproteinhu
AT inouejin specificsinglestrandeddnainducesadistinctconformationalchangeinthenucleoidassociatedproteinhu
AT itoyutaka specificsinglestrandeddnainducesadistinctconformationalchangeinthenucleoidassociatedproteinhu
AT shintaniyasunori specificsinglestrandeddnainducesadistinctconformationalchangeinthenucleoidassociatedproteinhu
AT masuiryoji specificsinglestrandeddnainducesadistinctconformationalchangeinthenucleoidassociatedproteinhu
AT kuramitsuseiki specificsinglestrandeddnainducesadistinctconformationalchangeinthenucleoidassociatedproteinhu
AT takashimaseiji specificsinglestrandeddnainducesadistinctconformationalchangeinthenucleoidassociatedproteinhu