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Interaction of Haloarchaeal Gas Vesicle Proteins Determined by Split-GFP

Several extremely halophilic archaea produce proteinaceous gas vesicles consisting of a gas-permeable protein wall constituted mainly by the gas vesicle proteins GvpA and GvpC. Eight additional accessory Gvp are involved in gas vesicle formation and might assist the assembly of this structure. Inves...

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Autores principales: Winter, Kerstin, Born, Johannes, Pfeifer, Felicitas
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6107691/
https://www.ncbi.nlm.nih.gov/pubmed/30174663
http://dx.doi.org/10.3389/fmicb.2018.01897
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author Winter, Kerstin
Born, Johannes
Pfeifer, Felicitas
author_facet Winter, Kerstin
Born, Johannes
Pfeifer, Felicitas
author_sort Winter, Kerstin
collection PubMed
description Several extremely halophilic archaea produce proteinaceous gas vesicles consisting of a gas-permeable protein wall constituted mainly by the gas vesicle proteins GvpA and GvpC. Eight additional accessory Gvp are involved in gas vesicle formation and might assist the assembly of this structure. Investigating interactions of halophilic proteins in vivo requires a method functioning at 2.5–5 M salt, and the split-GFP method was tested for this application. The two fragments NGFP and CGFP do not assemble a fluorescent GFP protein when produced in trans, but they assemble a fluorescent GFP when fused to interacting proteins. To adapt the method to high salt, we used the genes encoding two fragments of the salt-stable mGFP2 to construct four vector plasmids that allow an N- or C-terminal fusion to the two proteins of interest. To avoid a hindrance in the assembly of mGFP2, the fusion included a linker of 15 or 19 amino acids. The small gas vesicle accessory protein GvpM and its interaction partners GvpH, GvpJ, and GvpL were investigated by split-GFP. Eight different combinations were studied in each case, and fluorescent transformants indicative of an interaction were observed. We also determined that GvpF interacts with GvpM and uncovered the location of the interaction site of each of these proteins in GvpM. GvpL mainly interacted with the N-terminal 25-amino acid fragment of GvpM, whereas the other three proteins bound predominately to the C-terminal portion. Overall, the split-GFP method is suitable to investigate the interaction of two proteins in haloarchaeal cells. In future experiments, we will study the interactions of the remaining Gvps and determine whether some or all of these accessory Gvp proteins form (a) protein complex(es) during early stages of the assembly of the gas vesicle wall.
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spelling pubmed-61076912018-08-31 Interaction of Haloarchaeal Gas Vesicle Proteins Determined by Split-GFP Winter, Kerstin Born, Johannes Pfeifer, Felicitas Front Microbiol Microbiology Several extremely halophilic archaea produce proteinaceous gas vesicles consisting of a gas-permeable protein wall constituted mainly by the gas vesicle proteins GvpA and GvpC. Eight additional accessory Gvp are involved in gas vesicle formation and might assist the assembly of this structure. Investigating interactions of halophilic proteins in vivo requires a method functioning at 2.5–5 M salt, and the split-GFP method was tested for this application. The two fragments NGFP and CGFP do not assemble a fluorescent GFP protein when produced in trans, but they assemble a fluorescent GFP when fused to interacting proteins. To adapt the method to high salt, we used the genes encoding two fragments of the salt-stable mGFP2 to construct four vector plasmids that allow an N- or C-terminal fusion to the two proteins of interest. To avoid a hindrance in the assembly of mGFP2, the fusion included a linker of 15 or 19 amino acids. The small gas vesicle accessory protein GvpM and its interaction partners GvpH, GvpJ, and GvpL were investigated by split-GFP. Eight different combinations were studied in each case, and fluorescent transformants indicative of an interaction were observed. We also determined that GvpF interacts with GvpM and uncovered the location of the interaction site of each of these proteins in GvpM. GvpL mainly interacted with the N-terminal 25-amino acid fragment of GvpM, whereas the other three proteins bound predominately to the C-terminal portion. Overall, the split-GFP method is suitable to investigate the interaction of two proteins in haloarchaeal cells. In future experiments, we will study the interactions of the remaining Gvps and determine whether some or all of these accessory Gvp proteins form (a) protein complex(es) during early stages of the assembly of the gas vesicle wall. Frontiers Media S.A. 2018-08-17 /pmc/articles/PMC6107691/ /pubmed/30174663 http://dx.doi.org/10.3389/fmicb.2018.01897 Text en Copyright © 2018 Winter, Born and Pfeifer. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Microbiology
Winter, Kerstin
Born, Johannes
Pfeifer, Felicitas
Interaction of Haloarchaeal Gas Vesicle Proteins Determined by Split-GFP
title Interaction of Haloarchaeal Gas Vesicle Proteins Determined by Split-GFP
title_full Interaction of Haloarchaeal Gas Vesicle Proteins Determined by Split-GFP
title_fullStr Interaction of Haloarchaeal Gas Vesicle Proteins Determined by Split-GFP
title_full_unstemmed Interaction of Haloarchaeal Gas Vesicle Proteins Determined by Split-GFP
title_short Interaction of Haloarchaeal Gas Vesicle Proteins Determined by Split-GFP
title_sort interaction of haloarchaeal gas vesicle proteins determined by split-gfp
topic Microbiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6107691/
https://www.ncbi.nlm.nih.gov/pubmed/30174663
http://dx.doi.org/10.3389/fmicb.2018.01897
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