A novel strategy for site selective spin-labeling to investigate bioactive entities by DNP and EPR spectroscopy

Abstract A novel specific spin-labeling strategy for bioactive molecules is presented for eptifibatide (integrilin) an antiplatelet aggregation inhibitor, which derives from the venom of certain rattlesnakes. By specifically labeling the disulfide bridge this molecule becomes accessible for analytic...

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Main Authors: Kevin Herr, Max Fleckenstein, Martin Brodrecht, Mark V. Höfler, Henrike Heise, Fabien Aussenac, Torsten Gutmann, Michael Reggelin, Gerd Buntkowsky
Format: Article
Language:English
Published: Nature Publishing Group 2021-07-01
Series:Scientific Reports
Online Access:https://doi.org/10.1038/s41598-021-92975-6
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spelling doaj-3e3cc9a70aab41148a91c6390f29b6572021-07-04T11:30:45ZengNature Publishing GroupScientific Reports2045-23222021-07-0111111210.1038/s41598-021-92975-6A novel strategy for site selective spin-labeling to investigate bioactive entities by DNP and EPR spectroscopyKevin Herr0Max Fleckenstein1Martin Brodrecht2Mark V. Höfler3Henrike Heise4Fabien Aussenac5Torsten Gutmann6Michael Reggelin7Gerd Buntkowsky8Institute of Physical Chemistry, Technical University DarmstadtInstitute of Organic Chemistry, Technical University DarmstadtInstitute of Physical Chemistry, Technical University DarmstadtInstitute of Physical Chemistry, Technical University DarmstadtStructural Biochemistry (ICS-6), Institute of Complex SystemsBruker France SASInstitute of Physical Chemistry, Technical University DarmstadtInstitute of Organic Chemistry, Technical University DarmstadtInstitute of Physical Chemistry, Technical University DarmstadtAbstract A novel specific spin-labeling strategy for bioactive molecules is presented for eptifibatide (integrilin) an antiplatelet aggregation inhibitor, which derives from the venom of certain rattlesnakes. By specifically labeling the disulfide bridge this molecule becomes accessible for analytical techniques such as Electron Paramagnetic Resonance (EPR) and solid state Dynamic Nuclear Polarization (DNP). The necessary spin-label was synthesized and inserted into the disulfide bridge of eptifibatide via reductive followed by insertion by a double Michael addition under physiological conditions. This procedure is universally applicable for disulfide containing biomolecules and is expected to preserve their tertiary structure with minimal change due to the small size of the label and restoring of the previous disulfide connection. HPLC and MS analysis show the successful introduction of the spin label and EPR spectroscopy confirms its activity. DNP-enhanced solid state NMR experiments show signal enhancement factors of up to 19 in 13C CP MAS experiments which corresponds to time saving factors of up to 361. This clearly shows the high potential of our new spin labeling strategy for the introduction of site selective radical spin labels into biomolecules and biosolids without compromising its conformational integrity for structural investigations employing solid-state DNP or advanced EPR techniques.https://doi.org/10.1038/s41598-021-92975-6
collection DOAJ
language English
format Article
sources DOAJ
author Kevin Herr
Max Fleckenstein
Martin Brodrecht
Mark V. Höfler
Henrike Heise
Fabien Aussenac
Torsten Gutmann
Michael Reggelin
Gerd Buntkowsky
spellingShingle Kevin Herr
Max Fleckenstein
Martin Brodrecht
Mark V. Höfler
Henrike Heise
Fabien Aussenac
Torsten Gutmann
Michael Reggelin
Gerd Buntkowsky
A novel strategy for site selective spin-labeling to investigate bioactive entities by DNP and EPR spectroscopy
Scientific Reports
author_facet Kevin Herr
Max Fleckenstein
Martin Brodrecht
Mark V. Höfler
Henrike Heise
Fabien Aussenac
Torsten Gutmann
Michael Reggelin
Gerd Buntkowsky
author_sort Kevin Herr
title A novel strategy for site selective spin-labeling to investigate bioactive entities by DNP and EPR spectroscopy
title_short A novel strategy for site selective spin-labeling to investigate bioactive entities by DNP and EPR spectroscopy
title_full A novel strategy for site selective spin-labeling to investigate bioactive entities by DNP and EPR spectroscopy
title_fullStr A novel strategy for site selective spin-labeling to investigate bioactive entities by DNP and EPR spectroscopy
title_full_unstemmed A novel strategy for site selective spin-labeling to investigate bioactive entities by DNP and EPR spectroscopy
title_sort novel strategy for site selective spin-labeling to investigate bioactive entities by dnp and epr spectroscopy
publisher Nature Publishing Group
series Scientific Reports
issn 2045-2322
publishDate 2021-07-01
description Abstract A novel specific spin-labeling strategy for bioactive molecules is presented for eptifibatide (integrilin) an antiplatelet aggregation inhibitor, which derives from the venom of certain rattlesnakes. By specifically labeling the disulfide bridge this molecule becomes accessible for analytical techniques such as Electron Paramagnetic Resonance (EPR) and solid state Dynamic Nuclear Polarization (DNP). The necessary spin-label was synthesized and inserted into the disulfide bridge of eptifibatide via reductive followed by insertion by a double Michael addition under physiological conditions. This procedure is universally applicable for disulfide containing biomolecules and is expected to preserve their tertiary structure with minimal change due to the small size of the label and restoring of the previous disulfide connection. HPLC and MS analysis show the successful introduction of the spin label and EPR spectroscopy confirms its activity. DNP-enhanced solid state NMR experiments show signal enhancement factors of up to 19 in 13C CP MAS experiments which corresponds to time saving factors of up to 361. This clearly shows the high potential of our new spin labeling strategy for the introduction of site selective radical spin labels into biomolecules and biosolids without compromising its conformational integrity for structural investigations employing solid-state DNP or advanced EPR techniques.
url https://doi.org/10.1038/s41598-021-92975-6
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