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3D-MiXD: 3D-printed X-ray-compatible microfluidic devices for rapid, low-consumption serial synchrotron crystallography data collection in flow

Serial crystallography has enabled the study of complex biological questions through the determination of biomolecular structures at room temperature using low X-ray doses. Furthermore, it has enabled the study of protein dynamics by the capture of atomically resolved and time-resolved molecular mov...

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Autores principales: Monteiro, Diana C. F., von Stetten, David, Stohrer, Claudia, Sans, Marta, Pearson, Arwen R., Santoni, Gianluca, van der Linden, Peter, Trebbin, Martin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: International Union of Crystallography 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7055382/
https://www.ncbi.nlm.nih.gov/pubmed/32148849
http://dx.doi.org/10.1107/S2052252519016865
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author Monteiro, Diana C. F.
von Stetten, David
Stohrer, Claudia
Sans, Marta
Pearson, Arwen R.
Santoni, Gianluca
van der Linden, Peter
Trebbin, Martin
author_facet Monteiro, Diana C. F.
von Stetten, David
Stohrer, Claudia
Sans, Marta
Pearson, Arwen R.
Santoni, Gianluca
van der Linden, Peter
Trebbin, Martin
author_sort Monteiro, Diana C. F.
collection PubMed
description Serial crystallography has enabled the study of complex biological questions through the determination of biomolecular structures at room temperature using low X-ray doses. Furthermore, it has enabled the study of protein dynamics by the capture of atomically resolved and time-resolved molecular movies. However, the study of many biologically relevant targets is still severely hindered by high sample consumption and lengthy data-collection times. By combining serial synchrotron crystallography (SSX) with 3D printing, a new experimental platform has been created that tackles these challenges. An affordable 3D-printed, X-ray-compatible microfluidic device (3D-MiXD) is reported that allows data to be collected from protein microcrystals in a 3D flow with very high hit and indexing rates, while keeping the sample consumption low. The miniaturized 3D-MiXD can be rapidly installed into virtually any synchrotron beamline with only minimal adjustments. This efficient collection scheme in combination with its mixing geometry paves the way for recording molecular movies at synchrotrons by mixing-triggered millisecond time-resolved SSX.
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spelling pubmed-70553822020-03-06 3D-MiXD: 3D-printed X-ray-compatible microfluidic devices for rapid, low-consumption serial synchrotron crystallography data collection in flow Monteiro, Diana C. F. von Stetten, David Stohrer, Claudia Sans, Marta Pearson, Arwen R. Santoni, Gianluca van der Linden, Peter Trebbin, Martin IUCrJ Research Papers Serial crystallography has enabled the study of complex biological questions through the determination of biomolecular structures at room temperature using low X-ray doses. Furthermore, it has enabled the study of protein dynamics by the capture of atomically resolved and time-resolved molecular movies. However, the study of many biologically relevant targets is still severely hindered by high sample consumption and lengthy data-collection times. By combining serial synchrotron crystallography (SSX) with 3D printing, a new experimental platform has been created that tackles these challenges. An affordable 3D-printed, X-ray-compatible microfluidic device (3D-MiXD) is reported that allows data to be collected from protein microcrystals in a 3D flow with very high hit and indexing rates, while keeping the sample consumption low. The miniaturized 3D-MiXD can be rapidly installed into virtually any synchrotron beamline with only minimal adjustments. This efficient collection scheme in combination with its mixing geometry paves the way for recording molecular movies at synchrotrons by mixing-triggered millisecond time-resolved SSX. International Union of Crystallography 2020-01-16 /pmc/articles/PMC7055382/ /pubmed/32148849 http://dx.doi.org/10.1107/S2052252519016865 Text en © Diana C. F. Monteiro et al. 2020 http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution (CC-BY) Licence, which permits unrestricted use, distribution, and reproduction in any medium, provided the original authors and source are cited.http://creativecommons.org/licenses/by/4.0/
spellingShingle Research Papers
Monteiro, Diana C. F.
von Stetten, David
Stohrer, Claudia
Sans, Marta
Pearson, Arwen R.
Santoni, Gianluca
van der Linden, Peter
Trebbin, Martin
3D-MiXD: 3D-printed X-ray-compatible microfluidic devices for rapid, low-consumption serial synchrotron crystallography data collection in flow
title 3D-MiXD: 3D-printed X-ray-compatible microfluidic devices for rapid, low-consumption serial synchrotron crystallography data collection in flow
title_full 3D-MiXD: 3D-printed X-ray-compatible microfluidic devices for rapid, low-consumption serial synchrotron crystallography data collection in flow
title_fullStr 3D-MiXD: 3D-printed X-ray-compatible microfluidic devices for rapid, low-consumption serial synchrotron crystallography data collection in flow
title_full_unstemmed 3D-MiXD: 3D-printed X-ray-compatible microfluidic devices for rapid, low-consumption serial synchrotron crystallography data collection in flow
title_short 3D-MiXD: 3D-printed X-ray-compatible microfluidic devices for rapid, low-consumption serial synchrotron crystallography data collection in flow
title_sort 3d-mixd: 3d-printed x-ray-compatible microfluidic devices for rapid, low-consumption serial synchrotron crystallography data collection in flow
topic Research Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7055382/
https://www.ncbi.nlm.nih.gov/pubmed/32148849
http://dx.doi.org/10.1107/S2052252519016865
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