Bajaj Vikram S, van der Wel Patrick C A, Griffin Robert G
Francis Bitter Magnet Laboratory and Department of Chemistry, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, USA.
J Am Chem Soc. 2009 Jan 14;131(1):118-28. doi: 10.1021/ja8045926.
At reduced temperatures, proteins and other biomolecules are generally found to exhibit dynamic as well as structural transitions. This includes a so-called protein glass transition that is universally observed in systems cooled between 200 and 230 K, and which is generally attributed to interactions between hydrating solvent molecules and protein side chains. However, there is also experimental and theoretical evidence for a low-temperature transition in the intrinsic dynamics of the protein itself, absent any solvent. Here, we use low-temperature solid-state NMR to examine site-specific fluctuations in atomic structure and dynamics in the absence of solvents. In particular, we employ magic angle spinning NMR to examine a structural phase transition associated with dynamic processes in a solvent-free polypeptide, N-f-MLF-OH, lattice at temperatures as low as 90 K. This transition is characterized by the appearance of an extra set of lines in 1D (15)N spectra as well as additional cross peaks in 2D (13)C-(13)C and (13)C-(15)N spectra. Interestingly, the gradual, temperature-dependent appearance of the new spectral component is not accompanied by the line broadening typical of dynamic transitions. A direct comparison between the spectra of N-f-MLF-OH and the analog N-f-MLF-OMe, which does not display this transition, indicates a correlation of the structural transition to the temperature dependent motion of the aromatic phenylalanine side chain. Several quantitative solid state NMR experiments were employed to provide site-specific measurements of structural and motional features of the observed transition.
在降低的温度下,通常发现蛋白质和其他生物分子会表现出动力学以及结构转变。这包括在200至230K之间冷却的系统中普遍观察到的所谓蛋白质玻璃化转变,其通常归因于水合溶剂分子与蛋白质侧链之间的相互作用。然而,也有实验和理论证据表明,在没有任何溶剂的情况下,蛋白质本身的内在动力学存在低温转变。在这里,我们使用低温固态核磁共振来研究在没有溶剂的情况下原子结构和动力学的位点特异性波动。特别是,我们采用魔角旋转核磁共振来研究与无溶剂多肽N-f-MLF-OH晶格中低至90K温度下的动态过程相关的结构相变。这种转变的特征是在一维(15)N谱中出现一组额外的谱线,以及在二维(13)C-(13)C和(13)C-(15)N谱中出现额外的交叉峰。有趣的是,新谱成分随温度逐渐出现,并没有伴随着动态转变典型的谱线展宽。对未显示这种转变的类似物N-f-MLF-OMe与N-f-MLF-OH的光谱进行直接比较,表明结构转变与芳香族苯丙氨酸侧链的温度依赖性运动相关。我们采用了几个定量固态核磁共振实验来提供对观察到的转变的结构和运动特征的位点特异性测量。