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Nanobody Mediated Crystallization of an Archeal Mechanosensitive Channel

Mechanosensitive channels (MS) are integral membrane proteins and allow bacteria to survive sudden changes in external osmolarity due to transient opening of their pores. The efflux of cytoplasmic osmolytes reduces the membrane tension and prevents membrane rupture. Therefore these channels serve as...

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Autores principales: Löw, Christian, Yau, Yin Hoe, Pardon, Els, Jegerschöld, Caroline, Wåhlin, Lisa, Quistgaard, Esben M., Moberg, Per, Geifman-Shochat, Susana, Steyaert, Jan, Nordlund, Pär
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
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Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3804602/
https://www.ncbi.nlm.nih.gov/pubmed/24205053
http://dx.doi.org/10.1371/journal.pone.0077984
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author Löw, Christian
Yau, Yin Hoe
Pardon, Els
Jegerschöld, Caroline
Wåhlin, Lisa
Quistgaard, Esben M.
Moberg, Per
Geifman-Shochat, Susana
Steyaert, Jan
Nordlund, Pär
author_facet Löw, Christian
Yau, Yin Hoe
Pardon, Els
Jegerschöld, Caroline
Wåhlin, Lisa
Quistgaard, Esben M.
Moberg, Per
Geifman-Shochat, Susana
Steyaert, Jan
Nordlund, Pär
author_sort Löw, Christian
collection PubMed
description Mechanosensitive channels (MS) are integral membrane proteins and allow bacteria to survive sudden changes in external osmolarity due to transient opening of their pores. The efflux of cytoplasmic osmolytes reduces the membrane tension and prevents membrane rupture. Therefore these channels serve as emergency valves when experiencing significant environmental stress. The preparation of high quality crystals of integral membrane proteins is a major bottleneck for structure determination by X-ray crystallography. Crystallization chaperones based on various protein scaffolds have emerged as promising tool to increase the crystallization probability of a selected target protein. So far archeal mechanosensitive channels of small conductance have resisted crystallization in our hands. To structurally analyse these channels, we selected nanobodies against an archeal MS channel after immunization of a llama with recombinant expressed, detergent solubilized and purified protein. Here we present the characterization of 23 different binders regarding their interaction with the channel protein using analytical gel filtration, western blotting and surface plasmon resonance. Selected nanobodies bound the target with affinities in the pico- to nanomolar range and some binders had a profound effect on the crystallization of the MS channel. Together with previous data we show that nanobodies are a versatile and valuable tool in structural biology by widening the crystallization space for highly challenging proteins, protein complexes and integral membrane proteins.
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spelling pubmed-38046022013-11-07 Nanobody Mediated Crystallization of an Archeal Mechanosensitive Channel Löw, Christian Yau, Yin Hoe Pardon, Els Jegerschöld, Caroline Wåhlin, Lisa Quistgaard, Esben M. Moberg, Per Geifman-Shochat, Susana Steyaert, Jan Nordlund, Pär PLoS One Research Article Mechanosensitive channels (MS) are integral membrane proteins and allow bacteria to survive sudden changes in external osmolarity due to transient opening of their pores. The efflux of cytoplasmic osmolytes reduces the membrane tension and prevents membrane rupture. Therefore these channels serve as emergency valves when experiencing significant environmental stress. The preparation of high quality crystals of integral membrane proteins is a major bottleneck for structure determination by X-ray crystallography. Crystallization chaperones based on various protein scaffolds have emerged as promising tool to increase the crystallization probability of a selected target protein. So far archeal mechanosensitive channels of small conductance have resisted crystallization in our hands. To structurally analyse these channels, we selected nanobodies against an archeal MS channel after immunization of a llama with recombinant expressed, detergent solubilized and purified protein. Here we present the characterization of 23 different binders regarding their interaction with the channel protein using analytical gel filtration, western blotting and surface plasmon resonance. Selected nanobodies bound the target with affinities in the pico- to nanomolar range and some binders had a profound effect on the crystallization of the MS channel. Together with previous data we show that nanobodies are a versatile and valuable tool in structural biology by widening the crystallization space for highly challenging proteins, protein complexes and integral membrane proteins. Public Library of Science 2013-10-21 /pmc/articles/PMC3804602/ /pubmed/24205053 http://dx.doi.org/10.1371/journal.pone.0077984 Text en © 2013 Löw 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
Löw, Christian
Yau, Yin Hoe
Pardon, Els
Jegerschöld, Caroline
Wåhlin, Lisa
Quistgaard, Esben M.
Moberg, Per
Geifman-Shochat, Susana
Steyaert, Jan
Nordlund, Pär
Nanobody Mediated Crystallization of an Archeal Mechanosensitive Channel
title Nanobody Mediated Crystallization of an Archeal Mechanosensitive Channel
title_full Nanobody Mediated Crystallization of an Archeal Mechanosensitive Channel
title_fullStr Nanobody Mediated Crystallization of an Archeal Mechanosensitive Channel
title_full_unstemmed Nanobody Mediated Crystallization of an Archeal Mechanosensitive Channel
title_short Nanobody Mediated Crystallization of an Archeal Mechanosensitive Channel
title_sort nanobody mediated crystallization of an archeal mechanosensitive channel
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3804602/
https://www.ncbi.nlm.nih.gov/pubmed/24205053
http://dx.doi.org/10.1371/journal.pone.0077984
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