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Rotational diffusion tensor of nucleic acids from 13C NMR relaxation
Authors:Boisbouvier Jerome  Wu Zhengrong  Ono Arika  Kainosho Masatsune  Bax Ad
Affiliation:(1) Laboratory of Chemical Physics, National Institute of Diabetes and Digestive and Kidney Diseases, National Institutes of Health, Bethesda, Maryland, 20892-0520, U.S.A;(2) CREST and Graduate School of Science, Tokyo Metropolitan University, 1-1 Minami-oshawa, Hachioji, Tokyo, 192-0397, Japan
Abstract:Rotational diffusion properties have been derived for the DNA dodecamer d(CGCGAATTCGCG)2 from 13C R1rgr and R1 measurements on the C1prime, C3prime, and C4prime carbons in samples uniformly enriched in 13C. The narrow range of C-H bond vector orientations relative to the DNA axis make the analysis particularly sensitive to small structural deviations. As a result, the R1rgr/R1 ratios are found to fit poorly to the crystal structures of this dodecamer, but well to a recent solution NMR structure, determined in liquid crystalline media, even though globally the structures are quite similar. A fit of the R1rgr/R1 ratios to the solution structure is optimal for an axially symmetric rotational diffusion model, with a diffusion anisotropy, D||/Dbottom, of 2.1±0.4, and an overall rotational correlation time, (2D||+4Dbottom)–1, of 3.35 ns at 35 °C in D2O, in excellent agreement with values obtained from hydrodynamic modeling.
Keywords:anisotropy  13C relaxation  Dickerson dodecamer  diffusion anisotropy  nucleic acids  rotational diffusion
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