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Crystal Structures of the Transcriptional Repressor RolR Reveals a Novel Recognition Mechanism between Inducer and Regulator

Many members of the TetR family control the transcription of genes involved in multidrug resistance and pathogenicity. RolR (R esorcin ol R egulator), the recently reported TetR-type regulator for aromatic catabolism from Corynebacterium glutamicum, distinguishes itself by low sequence similarities...

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Autores principales: Li, De-Feng, Zhang, Ning, Hou, Yan-Jie, Huang, Yan, Hu, Yonglin, Zhang, Ying, Liu, Shuang-Jiang, Wang, Da-Cheng
Formato: Texto
Lenguaje:English
Publicado: Public Library of Science 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3086911/
https://www.ncbi.nlm.nih.gov/pubmed/21559286
http://dx.doi.org/10.1371/journal.pone.0019529
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author Li, De-Feng
Zhang, Ning
Hou, Yan-Jie
Huang, Yan
Hu, Yonglin
Zhang, Ying
Liu, Shuang-Jiang
Wang, Da-Cheng
author_facet Li, De-Feng
Zhang, Ning
Hou, Yan-Jie
Huang, Yan
Hu, Yonglin
Zhang, Ying
Liu, Shuang-Jiang
Wang, Da-Cheng
author_sort Li, De-Feng
collection PubMed
description Many members of the TetR family control the transcription of genes involved in multidrug resistance and pathogenicity. RolR (R esorcin ol R egulator), the recently reported TetR-type regulator for aromatic catabolism from Corynebacterium glutamicum, distinguishes itself by low sequence similarities and different regulation from the previously known members of the TetR family. Here we report the crystal structures of RolR in its effector-bound (with resorcinol) and aop- forms at 2.5 Å and 3.6 Å, respectively. The structure of resorcinol-RolR complex reveal that the hydrogen-bonded network mediated by the four-residue motif (Asp94- Arg145- Arg148- Asp149) with two water molecules and the hydrophobic interaction via five residues (Phe107, Leu111, Leu114, Leu142, and Phe172) are the key factors for the recognition and binding between the resorcinol and RolR molecules. The center-to-center separation of the recognition helices h3-h3′ is decreased upon effector-binding from 34.9 Å to 30.4 Å. This structural change results in that RolR was unsuitable for DNA binding. Those observations are distinct from that in other TetR members. Structure-based mutagenesis on RolR was carried out and the results confirmed the critical roles of the above mentioned residues for effector-binding specificity and affinity. Similar sequence searches and sequence alignments identified 29 RolR homologues from GenBank, and all the above mentioned residues are highly conserved in the homologues. Based on these structural and other functional investigations, it is proposed that RolR may represent a new subfamily of TetR proteins that are invovled in aromatic degradation and sharing common recognition mode as for RolR.
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spelling pubmed-30869112011-05-10 Crystal Structures of the Transcriptional Repressor RolR Reveals a Novel Recognition Mechanism between Inducer and Regulator Li, De-Feng Zhang, Ning Hou, Yan-Jie Huang, Yan Hu, Yonglin Zhang, Ying Liu, Shuang-Jiang Wang, Da-Cheng PLoS One Research Article Many members of the TetR family control the transcription of genes involved in multidrug resistance and pathogenicity. RolR (R esorcin ol R egulator), the recently reported TetR-type regulator for aromatic catabolism from Corynebacterium glutamicum, distinguishes itself by low sequence similarities and different regulation from the previously known members of the TetR family. Here we report the crystal structures of RolR in its effector-bound (with resorcinol) and aop- forms at 2.5 Å and 3.6 Å, respectively. The structure of resorcinol-RolR complex reveal that the hydrogen-bonded network mediated by the four-residue motif (Asp94- Arg145- Arg148- Asp149) with two water molecules and the hydrophobic interaction via five residues (Phe107, Leu111, Leu114, Leu142, and Phe172) are the key factors for the recognition and binding between the resorcinol and RolR molecules. The center-to-center separation of the recognition helices h3-h3′ is decreased upon effector-binding from 34.9 Å to 30.4 Å. This structural change results in that RolR was unsuitable for DNA binding. Those observations are distinct from that in other TetR members. Structure-based mutagenesis on RolR was carried out and the results confirmed the critical roles of the above mentioned residues for effector-binding specificity and affinity. Similar sequence searches and sequence alignments identified 29 RolR homologues from GenBank, and all the above mentioned residues are highly conserved in the homologues. Based on these structural and other functional investigations, it is proposed that RolR may represent a new subfamily of TetR proteins that are invovled in aromatic degradation and sharing common recognition mode as for RolR. Public Library of Science 2011-05-03 /pmc/articles/PMC3086911/ /pubmed/21559286 http://dx.doi.org/10.1371/journal.pone.0019529 Text en Li et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Li, De-Feng
Zhang, Ning
Hou, Yan-Jie
Huang, Yan
Hu, Yonglin
Zhang, Ying
Liu, Shuang-Jiang
Wang, Da-Cheng
Crystal Structures of the Transcriptional Repressor RolR Reveals a Novel Recognition Mechanism between Inducer and Regulator
title Crystal Structures of the Transcriptional Repressor RolR Reveals a Novel Recognition Mechanism between Inducer and Regulator
title_full Crystal Structures of the Transcriptional Repressor RolR Reveals a Novel Recognition Mechanism between Inducer and Regulator
title_fullStr Crystal Structures of the Transcriptional Repressor RolR Reveals a Novel Recognition Mechanism between Inducer and Regulator
title_full_unstemmed Crystal Structures of the Transcriptional Repressor RolR Reveals a Novel Recognition Mechanism between Inducer and Regulator
title_short Crystal Structures of the Transcriptional Repressor RolR Reveals a Novel Recognition Mechanism between Inducer and Regulator
title_sort crystal structures of the transcriptional repressor rolr reveals a novel recognition mechanism between inducer and regulator
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3086911/
https://www.ncbi.nlm.nih.gov/pubmed/21559286
http://dx.doi.org/10.1371/journal.pone.0019529
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