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Single, Double and Quadruple Alanine Substitutions at Oligomeric Interfaces Identify Hydrophobicity as the Key Determinant of Human Neutrophil Alpha Defensin HNP1 Function

HNP1 is a human alpha defensin that forms dimers and multimers governed by hydrophobic residues, including Tyr(16), Ile(20), Leu(25), and Phe(28). Previously, alanine scanning mutagenesis identified each of these residues and other hydrophobic residues as important for function. Here we report furth...

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Autores principales: Zhao, Le, Tolbert, W. David, Ericksen, Bryan, Zhan, Changyou, Wu, Xueji, Yuan, Weirong, Li, Xu, Pazgier, Marzena, Lu, Wuyuan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3827289/
https://www.ncbi.nlm.nih.gov/pubmed/24236072
http://dx.doi.org/10.1371/journal.pone.0078937
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author Zhao, Le
Tolbert, W. David
Ericksen, Bryan
Zhan, Changyou
Wu, Xueji
Yuan, Weirong
Li, Xu
Pazgier, Marzena
Lu, Wuyuan
author_facet Zhao, Le
Tolbert, W. David
Ericksen, Bryan
Zhan, Changyou
Wu, Xueji
Yuan, Weirong
Li, Xu
Pazgier, Marzena
Lu, Wuyuan
author_sort Zhao, Le
collection PubMed
description HNP1 is a human alpha defensin that forms dimers and multimers governed by hydrophobic residues, including Tyr(16), Ile(20), Leu(25), and Phe(28). Previously, alanine scanning mutagenesis identified each of these residues and other hydrophobic residues as important for function. Here we report further structural and functional studies of residues shown to interact with one another across oligomeric interfaces: I20A-HNP1 and L25A-HNP1, plus the double alanine mutants I20A/L25A-HNP1 and Y16A/F28A-HNP1, and the quadruple alanine mutant Y16A/I20A/L25A/F28A-HNP1. We tested binding to HIV-1 gp120 and HNP1 by surface plasmon resonance, binding to HIV-1 gp41 and HNP1 by fluorescence polarization, inhibition of anthrax lethal factor, and antibacterial activity using the virtual colony count assay. Similar to the previously described single mutant W26A-HNP1, the quadruple mutant displayed the least activity in all functional assays, followed by the double mutant Y16A/F28A-HNP1. The effects of the L25A and I20A single mutations were milder than the double mutant I20A/L25A-HNP1. Crystallographic studies confirmed the correct folding and disulfide pairing, and depicted an array of dimeric and tetrameric structures. These results indicate that side chain hydrophobicity is the critical factor that determines activity at these positions.
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spelling pubmed-38272892013-11-14 Single, Double and Quadruple Alanine Substitutions at Oligomeric Interfaces Identify Hydrophobicity as the Key Determinant of Human Neutrophil Alpha Defensin HNP1 Function Zhao, Le Tolbert, W. David Ericksen, Bryan Zhan, Changyou Wu, Xueji Yuan, Weirong Li, Xu Pazgier, Marzena Lu, Wuyuan PLoS One Research Article HNP1 is a human alpha defensin that forms dimers and multimers governed by hydrophobic residues, including Tyr(16), Ile(20), Leu(25), and Phe(28). Previously, alanine scanning mutagenesis identified each of these residues and other hydrophobic residues as important for function. Here we report further structural and functional studies of residues shown to interact with one another across oligomeric interfaces: I20A-HNP1 and L25A-HNP1, plus the double alanine mutants I20A/L25A-HNP1 and Y16A/F28A-HNP1, and the quadruple alanine mutant Y16A/I20A/L25A/F28A-HNP1. We tested binding to HIV-1 gp120 and HNP1 by surface plasmon resonance, binding to HIV-1 gp41 and HNP1 by fluorescence polarization, inhibition of anthrax lethal factor, and antibacterial activity using the virtual colony count assay. Similar to the previously described single mutant W26A-HNP1, the quadruple mutant displayed the least activity in all functional assays, followed by the double mutant Y16A/F28A-HNP1. The effects of the L25A and I20A single mutations were milder than the double mutant I20A/L25A-HNP1. Crystallographic studies confirmed the correct folding and disulfide pairing, and depicted an array of dimeric and tetrameric structures. These results indicate that side chain hydrophobicity is the critical factor that determines activity at these positions. Public Library of Science 2013-11-13 /pmc/articles/PMC3827289/ /pubmed/24236072 http://dx.doi.org/10.1371/journal.pone.0078937 Text en © 2013 Zhao 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
Zhao, Le
Tolbert, W. David
Ericksen, Bryan
Zhan, Changyou
Wu, Xueji
Yuan, Weirong
Li, Xu
Pazgier, Marzena
Lu, Wuyuan
Single, Double and Quadruple Alanine Substitutions at Oligomeric Interfaces Identify Hydrophobicity as the Key Determinant of Human Neutrophil Alpha Defensin HNP1 Function
title Single, Double and Quadruple Alanine Substitutions at Oligomeric Interfaces Identify Hydrophobicity as the Key Determinant of Human Neutrophil Alpha Defensin HNP1 Function
title_full Single, Double and Quadruple Alanine Substitutions at Oligomeric Interfaces Identify Hydrophobicity as the Key Determinant of Human Neutrophil Alpha Defensin HNP1 Function
title_fullStr Single, Double and Quadruple Alanine Substitutions at Oligomeric Interfaces Identify Hydrophobicity as the Key Determinant of Human Neutrophil Alpha Defensin HNP1 Function
title_full_unstemmed Single, Double and Quadruple Alanine Substitutions at Oligomeric Interfaces Identify Hydrophobicity as the Key Determinant of Human Neutrophil Alpha Defensin HNP1 Function
title_short Single, Double and Quadruple Alanine Substitutions at Oligomeric Interfaces Identify Hydrophobicity as the Key Determinant of Human Neutrophil Alpha Defensin HNP1 Function
title_sort single, double and quadruple alanine substitutions at oligomeric interfaces identify hydrophobicity as the key determinant of human neutrophil alpha defensin hnp1 function
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3827289/
https://www.ncbi.nlm.nih.gov/pubmed/24236072
http://dx.doi.org/10.1371/journal.pone.0078937
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