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Diversity of the Hydrogen Bond Network and Its Impact on NMR Parameters of Amylose B Polymorph: A Study Using Molecular Dynamics and DFT Calculations Within Periodic Boundary Conditions
Author(s) -
Adrien Schahl,
Iann C. Gerber,
Valérie Réat,
Franck Jolibois
Publication year - 2020
Publication title -
the journal of physical chemistry b
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.864
H-Index - 392
eISSN - 1520-6106
pISSN - 1520-5207
DOI - 10.1021/acs.jpcb.0c08631
Subject(s) - periodic boundary conditions , molecular dynamics , hydrogen bond , crystallography , chemistry , crystal (programming language) , crystal structure , carbon 13 nmr , computational chemistry , ternary operation , chemical physics , molecule , boundary value problem , stereochemistry , physics , organic chemistry , quantum mechanics , computer science , programming language
Classical molecular dynamics simulations have been combined with quantum (DFT) calculations of 13 C NMR parameters in order to relate the experimental spectrum of the double-helix form of the amylose B-polymorph in highly crystalline conditions not only to its 3D structure but also to the arrangement of atoms in the crystal lattice. Structures obtained from these simulations or from geometry optimization procedures at the DFT level have shown the presence of hydrogen bond networks between sugars of the same helix or between residues of the two chains of the double helix. 13 C NMR parameter calculations have revealed the impact of such a network on the chemical shifts of carbon atoms. In addition, DFT calculations using periodic boundary conditions were compulsory to highlight the presence of two types of sugar within the crystal sample. It allows us to confirm, theoretically, the experimental hypothesis that the existence of two distinct sugar types in the NMR spectrum is a consequence of crystal packing.

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