Engineering and Production of the Light-Driven Proton Pump Bacteriorhodopsin in 2D Crystals for Basic Research and Applied Technologies

The light-driven proton pump bacteriorhodopsin (BR) from the extreme halophilic archaeon <i>Halobacterium salinarum</i> is a retinal-binding protein, which forms highly ordered and thermally stable 2D crystals in native membranes (termed purple membranes). BR and purple membranes (PMs) h...

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Main Authors: Mirko Stauffer, Stephan Hirschi, Zöhre Ucurum, Daniel Harder, Ramona Schlesinger, Dimitrios Fotiadis
Format: Article
Language:English
Published: MDPI AG 2020-07-01
Series:Methods and Protocols
Subjects:
Online Access:https://www.mdpi.com/2409-9279/3/3/51
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spelling doaj-d7f1aa4c173a49d19ae0fb20b0a831ca2020-11-25T03:25:32ZengMDPI AGMethods and Protocols2409-92792020-07-013515110.3390/mps3030051Engineering and Production of the Light-Driven Proton Pump Bacteriorhodopsin in 2D Crystals for Basic Research and Applied TechnologiesMirko Stauffer0Stephan Hirschi1Zöhre Ucurum2Daniel Harder3Ramona Schlesinger4Dimitrios Fotiadis5Institute of Biochemistry and Molecular Medicine, and Swiss National Centre of Competence in Research (NCCR) TransCure, University of Bern, 3012 Bern, SwitzerlandInstitute of Biochemistry and Molecular Medicine, and Swiss National Centre of Competence in Research (NCCR) TransCure, University of Bern, 3012 Bern, SwitzerlandInstitute of Biochemistry and Molecular Medicine, and Swiss National Centre of Competence in Research (NCCR) TransCure, University of Bern, 3012 Bern, SwitzerlandInstitute of Biochemistry and Molecular Medicine, and Swiss National Centre of Competence in Research (NCCR) TransCure, University of Bern, 3012 Bern, SwitzerlandDepartment of Physics, Genetic Biophysics, Freie Universität Berlin, 14195 Berlin, GermanyInstitute of Biochemistry and Molecular Medicine, and Swiss National Centre of Competence in Research (NCCR) TransCure, University of Bern, 3012 Bern, SwitzerlandThe light-driven proton pump bacteriorhodopsin (BR) from the extreme halophilic archaeon <i>Halobacterium salinarum</i> is a retinal-binding protein, which forms highly ordered and thermally stable 2D crystals in native membranes (termed purple membranes). BR and purple membranes (PMs) have been and are still being intensively studied by numerous researchers from different scientific disciplines. Furthermore, PMs are being successfully used in new, emerging technologies such as bioelectronics and bionanotechnology. Most published studies used the wild-type form of BR, because of the intrinsic difficulty to produce genetically modified versions in purple membranes homologously. However, modification and engineering is crucial for studies in basic research and, in particular, to tailor BR for specific applications in applied sciences. We present an extensive and detailed protocol ranging from the genetic modification and cultivation of <i>H. salinarum</i> to the isolation, and biochemical, biophysical and functional characterization of BR and purple membranes. Pitfalls and problems of the homologous expression of BR versions in <i>H. salinarum</i> are discussed and possible solutions presented. The protocol is intended to facilitate the access to genetically modified BR versions for researchers of different scientific disciplines, thus increasing the application of this versatile biomaterial.https://www.mdpi.com/2409-9279/3/3/51bacteriorhodopsinbioelectronicsbiomaterialbionanotechnology<i>Halobacterium salinarum</i>light-driven proton pump
collection DOAJ
language English
format Article
sources DOAJ
author Mirko Stauffer
Stephan Hirschi
Zöhre Ucurum
Daniel Harder
Ramona Schlesinger
Dimitrios Fotiadis
spellingShingle Mirko Stauffer
Stephan Hirschi
Zöhre Ucurum
Daniel Harder
Ramona Schlesinger
Dimitrios Fotiadis
Engineering and Production of the Light-Driven Proton Pump Bacteriorhodopsin in 2D Crystals for Basic Research and Applied Technologies
Methods and Protocols
bacteriorhodopsin
bioelectronics
biomaterial
bionanotechnology
<i>Halobacterium salinarum</i>
light-driven proton pump
author_facet Mirko Stauffer
Stephan Hirschi
Zöhre Ucurum
Daniel Harder
Ramona Schlesinger
Dimitrios Fotiadis
author_sort Mirko Stauffer
title Engineering and Production of the Light-Driven Proton Pump Bacteriorhodopsin in 2D Crystals for Basic Research and Applied Technologies
title_short Engineering and Production of the Light-Driven Proton Pump Bacteriorhodopsin in 2D Crystals for Basic Research and Applied Technologies
title_full Engineering and Production of the Light-Driven Proton Pump Bacteriorhodopsin in 2D Crystals for Basic Research and Applied Technologies
title_fullStr Engineering and Production of the Light-Driven Proton Pump Bacteriorhodopsin in 2D Crystals for Basic Research and Applied Technologies
title_full_unstemmed Engineering and Production of the Light-Driven Proton Pump Bacteriorhodopsin in 2D Crystals for Basic Research and Applied Technologies
title_sort engineering and production of the light-driven proton pump bacteriorhodopsin in 2d crystals for basic research and applied technologies
publisher MDPI AG
series Methods and Protocols
issn 2409-9279
publishDate 2020-07-01
description The light-driven proton pump bacteriorhodopsin (BR) from the extreme halophilic archaeon <i>Halobacterium salinarum</i> is a retinal-binding protein, which forms highly ordered and thermally stable 2D crystals in native membranes (termed purple membranes). BR and purple membranes (PMs) have been and are still being intensively studied by numerous researchers from different scientific disciplines. Furthermore, PMs are being successfully used in new, emerging technologies such as bioelectronics and bionanotechnology. Most published studies used the wild-type form of BR, because of the intrinsic difficulty to produce genetically modified versions in purple membranes homologously. However, modification and engineering is crucial for studies in basic research and, in particular, to tailor BR for specific applications in applied sciences. We present an extensive and detailed protocol ranging from the genetic modification and cultivation of <i>H. salinarum</i> to the isolation, and biochemical, biophysical and functional characterization of BR and purple membranes. Pitfalls and problems of the homologous expression of BR versions in <i>H. salinarum</i> are discussed and possible solutions presented. The protocol is intended to facilitate the access to genetically modified BR versions for researchers of different scientific disciplines, thus increasing the application of this versatile biomaterial.
topic bacteriorhodopsin
bioelectronics
biomaterial
bionanotechnology
<i>Halobacterium salinarum</i>
light-driven proton pump
url https://www.mdpi.com/2409-9279/3/3/51
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