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The electrostatic potential for the phosphodiester group determined from X‐ray diffraction
Author(s) -
Klooster W. T.,
Craven B. M.
Publication year - 1992
Publication title -
biopolymers
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.556
H-Index - 125
eISSN - 1097-0282
pISSN - 0006-3525
DOI - 10.1002/bip.360320903
Subject(s) - chemistry , crystallography , multipole expansion , charge density , monoclinic crystal system , dipole , hydrogen bond , crystal structure , hydrogen atom , ion , tungstate , atom (system on chip) , diffraction , group (periodic table) , molecule , physics , inorganic chemistry , quantum mechanics , organic chemistry , computer science , embedded system
Abstract The charge density distribution in the crystal structure of ammonium dimethylphosphate at 123 K has been determined from x‐ray diffraction data (MoK α ) using 8437 reflections with sin θ/λ < 1.33.Å −1 [NH   4 +· (CH 3 ) 2 PO   4 − , M r = 143.08, monoclinic, P2 1 /c, a = 10.007(1), b = 6.926(1), c = 9.599(2) Å, β = 105.40(1) °, V = 641.4(3) Å 3 , Z = 4, F 000 = 304, D x = 1.4815 g· cm −3 , µ = 3.726 cm −1 ]. Least‐squares structure refinement assuming Stewart's rigid pseudoatom model (variables including Slater‐type radial exponents and electron populations for multipole terms extending to octapoles for C, N, O, and P, and dipoles for H) gave R ( F 2 ) = 0.039 for all reflections. The dimethylphosphate anion is in the gauche‐gauche conformation and has approximate twofold symmetry. One phosphoryl O atom forms three hydrogen bonds and the other forms one. Neither of the ester O atoms is hydrogen bonded. For the dimethylphosphate anion isolated from the crystal structure, a map of the electrostatic potential obtained using the pseudoatom charge parameters shows that the phosphoryl O atoms are considerably more electronegative than the ester O atoms. The electrostatic potential distribution obtained in this way has been fitted by least squares to a system of atom‐centered point charges. The potential calculated from these point charges agrees with the experimental result. It also agrees reasonably well with potentials obtained from three other systems of point charges that are widely used as part of the semiempirical force field for molecular mechanics and molecular dynamics calculations involving nucleic acids. © 1992 John Wiley & Sons, Inc.

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