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Conformational Investigations in Flexible Molecules Using Orientational NMR Constraints in Combination with (3)J-Couplings and NOE Distances

The downscaling of NMR tensorial interactions, such as dipolar couplings, from tens of kilohertz to a few hertz in low-order media is the result of dynamics spanning several orders of magnitudes, including vibrational modes (~ns-fs), whole-molecule reorientation (~ns) and higher barrier internal con...

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Autores principales: Farès, Christophe, Lingnau, Julia B., Wirtz, Cornelia, Sternberg, Ulrich
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6930577/
https://www.ncbi.nlm.nih.gov/pubmed/31816930
http://dx.doi.org/10.3390/molecules24234417
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author Farès, Christophe
Lingnau, Julia B.
Wirtz, Cornelia
Sternberg, Ulrich
author_facet Farès, Christophe
Lingnau, Julia B.
Wirtz, Cornelia
Sternberg, Ulrich
author_sort Farès, Christophe
collection PubMed
description The downscaling of NMR tensorial interactions, such as dipolar couplings, from tens of kilohertz to a few hertz in low-order media is the result of dynamics spanning several orders of magnitudes, including vibrational modes (~ns-fs), whole-molecule reorientation (~ns) and higher barrier internal conformational exchange (<ms). In this work, we propose to employ these dynamically averaged interactions to drive an “alignment-tensor-free” molecular dynamic simulation with orientation constraints (MDOC) in order to efficiently access the conformational space sampled by flexible small molecules such as natural products. Key to this approach is the application of tensorial pseudo-force restraints which simultaneously guide the overall reorientation and conformational fluctuations based on defined memory function over the running trajectory. With the molecular mechanics force-field, which includes bond polarization theory (BPT), and complemented with other available NMR parameters such as NOEs and scalar J-couplings, MDOC efficiently arrives at dynamic ensembles that reproduce the entire NMR dataset with exquisite accuracy and theoretically reveal the systems conformational space and equilibrium. The method as well as its potential towards configurational elucidation is presented on diastereomeric pairs of flexible molecules: a small 1,4-diketone 1 with a single rotatable bond as well as a 24-ring macrolide related to the natural product mandelalide A 2.
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spelling pubmed-69305772019-12-26 Conformational Investigations in Flexible Molecules Using Orientational NMR Constraints in Combination with (3)J-Couplings and NOE Distances Farès, Christophe Lingnau, Julia B. Wirtz, Cornelia Sternberg, Ulrich Molecules Article The downscaling of NMR tensorial interactions, such as dipolar couplings, from tens of kilohertz to a few hertz in low-order media is the result of dynamics spanning several orders of magnitudes, including vibrational modes (~ns-fs), whole-molecule reorientation (~ns) and higher barrier internal conformational exchange (<ms). In this work, we propose to employ these dynamically averaged interactions to drive an “alignment-tensor-free” molecular dynamic simulation with orientation constraints (MDOC) in order to efficiently access the conformational space sampled by flexible small molecules such as natural products. Key to this approach is the application of tensorial pseudo-force restraints which simultaneously guide the overall reorientation and conformational fluctuations based on defined memory function over the running trajectory. With the molecular mechanics force-field, which includes bond polarization theory (BPT), and complemented with other available NMR parameters such as NOEs and scalar J-couplings, MDOC efficiently arrives at dynamic ensembles that reproduce the entire NMR dataset with exquisite accuracy and theoretically reveal the systems conformational space and equilibrium. The method as well as its potential towards configurational elucidation is presented on diastereomeric pairs of flexible molecules: a small 1,4-diketone 1 with a single rotatable bond as well as a 24-ring macrolide related to the natural product mandelalide A 2. MDPI 2019-12-03 /pmc/articles/PMC6930577/ /pubmed/31816930 http://dx.doi.org/10.3390/molecules24234417 Text en © 2019 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Farès, Christophe
Lingnau, Julia B.
Wirtz, Cornelia
Sternberg, Ulrich
Conformational Investigations in Flexible Molecules Using Orientational NMR Constraints in Combination with (3)J-Couplings and NOE Distances
title Conformational Investigations in Flexible Molecules Using Orientational NMR Constraints in Combination with (3)J-Couplings and NOE Distances
title_full Conformational Investigations in Flexible Molecules Using Orientational NMR Constraints in Combination with (3)J-Couplings and NOE Distances
title_fullStr Conformational Investigations in Flexible Molecules Using Orientational NMR Constraints in Combination with (3)J-Couplings and NOE Distances
title_full_unstemmed Conformational Investigations in Flexible Molecules Using Orientational NMR Constraints in Combination with (3)J-Couplings and NOE Distances
title_short Conformational Investigations in Flexible Molecules Using Orientational NMR Constraints in Combination with (3)J-Couplings and NOE Distances
title_sort conformational investigations in flexible molecules using orientational nmr constraints in combination with (3)j-couplings and noe distances
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6930577/
https://www.ncbi.nlm.nih.gov/pubmed/31816930
http://dx.doi.org/10.3390/molecules24234417
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