Optimized method for preparation of IgG-binding bacterial magnetic nanoparticles.

In this study, the optimized method for designing IgG-binding magnetosomes based on integration of IgG-binding fusion proteins into magnetosome membrane in vitro is presented. Fusion proteins Mbb and Mistbb consisting of magnetosome membrane protein MamC and membrane associating protein Mistic from...

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Main Authors: Denis S Grouzdev, Marina V Dziuba, Denis V Kurek, Alexander I Ovchinnikov, Nadezhda A Zhigalova, Boris B Kuznetsov, Konstantin G Skryabin
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2014-01-01
Series:PLoS ONE
Online Access:https://doi.org/10.1371/journal.pone.0109914
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spelling doaj-c4bfaff759a34201af328af66a6017842021-03-03T20:12:05ZengPublic Library of Science (PLoS)PLoS ONE1932-62032014-01-01910e10991410.1371/journal.pone.0109914Optimized method for preparation of IgG-binding bacterial magnetic nanoparticles.Denis S GrouzdevMarina V DziubaDenis V KurekAlexander I OvchinnikovNadezhda A ZhigalovaBoris B KuznetsovKonstantin G SkryabinIn this study, the optimized method for designing IgG-binding magnetosomes based on integration of IgG-binding fusion proteins into magnetosome membrane in vitro is presented. Fusion proteins Mbb and Mistbb consisting of magnetosome membrane protein MamC and membrane associating protein Mistic from Bacillus subtilis as anchors and BB-domains of Staphylococcus aureus protein A as IgG-binding region were used. With Response Surface Methodology (RSM) the highest level of proteins integration into magnetosome membrane was achieved under the following parameters: pH 8.78, without adding NaCl and 55 s of vortexing for Mbb; pH 9.48, 323 mM NaCl and 55 s of vortexing for Mistbb. Modified magnetosomes with Mbb and Mistbb displayed on their surface demonstrated comparable levels of IgG-binding activity, suggesting that both proteins could be efficiently used as anchor molecules. We also demonstrated that such modified magnetosomes are stable in PBS buffer during at least two weeks. IgG-binding magnetosomes obtained by this approach could serve as a multifunctional platform for displaying various types of antibodies.https://doi.org/10.1371/journal.pone.0109914
collection DOAJ
language English
format Article
sources DOAJ
author Denis S Grouzdev
Marina V Dziuba
Denis V Kurek
Alexander I Ovchinnikov
Nadezhda A Zhigalova
Boris B Kuznetsov
Konstantin G Skryabin
spellingShingle Denis S Grouzdev
Marina V Dziuba
Denis V Kurek
Alexander I Ovchinnikov
Nadezhda A Zhigalova
Boris B Kuznetsov
Konstantin G Skryabin
Optimized method for preparation of IgG-binding bacterial magnetic nanoparticles.
PLoS ONE
author_facet Denis S Grouzdev
Marina V Dziuba
Denis V Kurek
Alexander I Ovchinnikov
Nadezhda A Zhigalova
Boris B Kuznetsov
Konstantin G Skryabin
author_sort Denis S Grouzdev
title Optimized method for preparation of IgG-binding bacterial magnetic nanoparticles.
title_short Optimized method for preparation of IgG-binding bacterial magnetic nanoparticles.
title_full Optimized method for preparation of IgG-binding bacterial magnetic nanoparticles.
title_fullStr Optimized method for preparation of IgG-binding bacterial magnetic nanoparticles.
title_full_unstemmed Optimized method for preparation of IgG-binding bacterial magnetic nanoparticles.
title_sort optimized method for preparation of igg-binding bacterial magnetic nanoparticles.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2014-01-01
description In this study, the optimized method for designing IgG-binding magnetosomes based on integration of IgG-binding fusion proteins into magnetosome membrane in vitro is presented. Fusion proteins Mbb and Mistbb consisting of magnetosome membrane protein MamC and membrane associating protein Mistic from Bacillus subtilis as anchors and BB-domains of Staphylococcus aureus protein A as IgG-binding region were used. With Response Surface Methodology (RSM) the highest level of proteins integration into magnetosome membrane was achieved under the following parameters: pH 8.78, without adding NaCl and 55 s of vortexing for Mbb; pH 9.48, 323 mM NaCl and 55 s of vortexing for Mistbb. Modified magnetosomes with Mbb and Mistbb displayed on their surface demonstrated comparable levels of IgG-binding activity, suggesting that both proteins could be efficiently used as anchor molecules. We also demonstrated that such modified magnetosomes are stable in PBS buffer during at least two weeks. IgG-binding magnetosomes obtained by this approach could serve as a multifunctional platform for displaying various types of antibodies.
url https://doi.org/10.1371/journal.pone.0109914
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