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New methodologies at PF AR-NW12A: the implementation of high-pressure macromolecular crystallography

The macromolecular crystallography (MX) beamline AR-NW12A is evolving from its original design of high-throughput crystallography to a multi-purpose end-station. Among the various options to be implemented, great efforts were made in making available high-pressure MX (HPMX) at the beamline. High-pre...

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Autores principales: Chavas, Leonard Michel Gabriel, Nagae, Tadayuki, Yamada, Hiroyuki, Watanabe, Nobuhisa, Yamada, Yusuke, Hiraki, Masahiko, Matsugaki, Naohiro
Formato: Online Artículo Texto
Lenguaje:English
Publicado: International Union of Crystallography 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3795540/
https://www.ncbi.nlm.nih.gov/pubmed/24121324
http://dx.doi.org/10.1107/S0909049513020797
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author Chavas, Leonard Michel Gabriel
Nagae, Tadayuki
Yamada, Hiroyuki
Watanabe, Nobuhisa
Yamada, Yusuke
Hiraki, Masahiko
Matsugaki, Naohiro
author_facet Chavas, Leonard Michel Gabriel
Nagae, Tadayuki
Yamada, Hiroyuki
Watanabe, Nobuhisa
Yamada, Yusuke
Hiraki, Masahiko
Matsugaki, Naohiro
author_sort Chavas, Leonard Michel Gabriel
collection PubMed
description The macromolecular crystallography (MX) beamline AR-NW12A is evolving from its original design of high-throughput crystallography to a multi-purpose end-station. Among the various options to be implemented, great efforts were made in making available high-pressure MX (HPMX) at the beamline. High-pressure molecular biophysics is a developing field that attracts the interest of a constantly growing scientific community. A plethora of activities can benefit from high pressure, and investigations have been performed on its applicability to study multimeric complex assemblies, compressibility of proteins and their crystals, macromolecules originating from extremophiles, or even the trapping of higher-energy conformers for molecules of biological interest. Recent studies using HPMX showed structural hydrostatic-pressure-induced changes in proteins. The conformational modifications could explain the enzymatic mechanism differences between proteins of the same family, living at different environmental pressures, as well as the initial steps in the pressure-denaturation process that have been attributed to water penetration into the protein interior. To facilitate further HPMX, while allowing access to various individualized set-ups and experiments, the AR-NW12A sample environment has been revisited. Altogether, the newly added implementations will bring a fresh breath of life to AR-NW12A and allow the MX community to experiment in a larger set of fields related to structural biology.
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spelling pubmed-37955402013-10-15 New methodologies at PF AR-NW12A: the implementation of high-pressure macromolecular crystallography Chavas, Leonard Michel Gabriel Nagae, Tadayuki Yamada, Hiroyuki Watanabe, Nobuhisa Yamada, Yusuke Hiraki, Masahiko Matsugaki, Naohiro J Synchrotron Radiat Diffraction Structural Biology The macromolecular crystallography (MX) beamline AR-NW12A is evolving from its original design of high-throughput crystallography to a multi-purpose end-station. Among the various options to be implemented, great efforts were made in making available high-pressure MX (HPMX) at the beamline. High-pressure molecular biophysics is a developing field that attracts the interest of a constantly growing scientific community. A plethora of activities can benefit from high pressure, and investigations have been performed on its applicability to study multimeric complex assemblies, compressibility of proteins and their crystals, macromolecules originating from extremophiles, or even the trapping of higher-energy conformers for molecules of biological interest. Recent studies using HPMX showed structural hydrostatic-pressure-induced changes in proteins. The conformational modifications could explain the enzymatic mechanism differences between proteins of the same family, living at different environmental pressures, as well as the initial steps in the pressure-denaturation process that have been attributed to water penetration into the protein interior. To facilitate further HPMX, while allowing access to various individualized set-ups and experiments, the AR-NW12A sample environment has been revisited. Altogether, the newly added implementations will bring a fresh breath of life to AR-NW12A and allow the MX community to experiment in a larger set of fields related to structural biology. International Union of Crystallography 2013-11-01 2013-10-01 /pmc/articles/PMC3795540/ /pubmed/24121324 http://dx.doi.org/10.1107/S0909049513020797 Text en © Leonard Michel Gabriel Chavas et al. 2013 http://creativecommons.org/licenses/by/2.0/uk/ This is an open-access article distributed under the terms of the Creative Commons Attribution Licence, which permits unrestricted use, distribution, and reproduction in any medium, provided the original authors and source are cited.
spellingShingle Diffraction Structural Biology
Chavas, Leonard Michel Gabriel
Nagae, Tadayuki
Yamada, Hiroyuki
Watanabe, Nobuhisa
Yamada, Yusuke
Hiraki, Masahiko
Matsugaki, Naohiro
New methodologies at PF AR-NW12A: the implementation of high-pressure macromolecular crystallography
title New methodologies at PF AR-NW12A: the implementation of high-pressure macromolecular crystallography
title_full New methodologies at PF AR-NW12A: the implementation of high-pressure macromolecular crystallography
title_fullStr New methodologies at PF AR-NW12A: the implementation of high-pressure macromolecular crystallography
title_full_unstemmed New methodologies at PF AR-NW12A: the implementation of high-pressure macromolecular crystallography
title_short New methodologies at PF AR-NW12A: the implementation of high-pressure macromolecular crystallography
title_sort new methodologies at pf ar-nw12a: the implementation of high-pressure macromolecular crystallography
topic Diffraction Structural Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3795540/
https://www.ncbi.nlm.nih.gov/pubmed/24121324
http://dx.doi.org/10.1107/S0909049513020797
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