Response of lysozyme internal dynamics to hydration probed by 13C and 1H solid-state NMR relaxation

被引:8
作者
Krushelnitsky, A
Reichert, D
机构
[1] Russian Acad Sci, Kazan Inst Biochem & Biophys, Kazan 420111, Russia
[2] Univ Halle Wittenberg, Dept Phys, Halle An Der Saale, Germany
关键词
D O I
10.1007/BF03166746
中图分类号
O64 [物理化学(理论化学)、化学物理学]; O56 [分子物理学、原子物理学];
学科分类号
070203 ; 070304 ; 081704 ; 1406 ;
摘要
We have studied the hydration dependence of the internal protein dynamics of hen egg white lysozynie by naturally abundant C-13 and H-1 nuclear magnetic resonance (NMR) relaxation. NMR relaxation times T-1 off-resonance T-1p and proton-decoupled on-resonance T-1p (only for carbon experiments) were measured in the temperature range from 0 to 50degreesC. The spectral resolution in carbon cross-polarization magic angle spinning spectrum allows to treat methine. methylene and methyl carbons separately, while proton experiments provide only one integral signal from all protons at a time. The relaxation times were quantitatively analyzed by the well-established correlation function formalism and model-free approach. The whole set of the data could be adequately described by a model assuming three types of motion having correlation times around 10(-4), 10(-9) and 10(-12). The slowest process originated from correlated conformational transitions between different energy minima. the intermediate process could be identified as librations within one energy minimum, and the fastest one is a fast rotation of methyl protons around the symmetry axis of methyl groups. A comparison of the dynamic behavior of lysozyme and polylysine obtained from a previous study (A. Krushelnitsky, D. Faizullin, D. Reichert. Biopolymers 73, 1-15 2004) reveals that in the dry state both biopolymers are rigid on both fast and slow time scales. Upon hydration, lysozyme and polylysine reveal a considerable enhancement of the internal mobility, however. in different was. The side chain of polylysine are more mobile than those of lysozynte. whereas for the backbone a reversed picture is observed. This difference correlates with structural features of lysozyme and polylysine discussed in detail. Due to the presence of a fast spin diffusion. the analysis of proton relaxation data is a more difficult task. However, our data demonstrate that the correlation functions of motion obtained from carbon and proton experiments are substantially different. We explained this by the fact that these two types of NMR relaxation experiments probe the motion of different internuclear vectors. The comparison of the proton data with our previous results on proton relaxation times T-1 measured over a wide temperature range indicates that at low temperatures lysozyme undergoes structural rearrangements affecting the amplitudes and/or activation energies of motions.
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页码:501 / 518
页数:18
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