Cañadillas José Manuel Pérez, Tidow Henning, Freund Stefan M V, Rutherford Trevor J, Ang Hwee Ching, Fersht Alan R
Medical Research Council Centre for Protein Engineering, Medical Research Council Centre, Hills Road, Cambridge CB2 2QH, United Kingdom.
Proc Natl Acad Sci U S A. 2006 Feb 14;103(7):2109-14. doi: 10.1073/pnas.0510941103. Epub 2006 Feb 6.
The 25-kDa core domain of the tumor suppressor p53 is inherently unstable and melts at just above body temperature, which makes it susceptible to oncogenic mutations that inactivate it by lowering its stability. We determined its structure in solution using state-of-the-art isotopic labeling techniques and NMR spectroscopy to complement its crystal structure. The structure was very similar to that in the crystal but far more mobile than expected. Importantly, we were able to analyze by NMR the structural environment of several buried polar groups, which indicated structural reasons for the instability. NMR spectroscopy, with its ability to detect protons, located buried hydroxyl and sulfhydryl groups that form suboptimal hydrogen-bond networks. We mutated one such buried pair, Tyr-236 and Thr-253 to Phe-236 and Ile-253 (as found in the paralogs p63 and p73), and stabilized p53 by 1.6 kcal/mol. We also detected differences in the conformation of a mobile loop that might reflect the existence of physiologically relevant alternative conformations. The effects of temperature on the dynamics of aromatic residues indicated that the protein also experiences several dynamic processes that might be related to the presence of alternative hydrogen-bond patterns in the protein interior. p53 appears to have evolved to be dynamic and unstable.
肿瘤抑制因子p53的25千道尔顿核心结构域本质上不稳定,在略高于体温时就会解链,这使其容易发生致癌突变,通过降低其稳定性使其失活。我们使用最先进的同位素标记技术和核磁共振光谱法在溶液中确定其结构,以补充其晶体结构。该结构与晶体中的结构非常相似,但比预期的更具流动性。重要的是,我们能够通过核磁共振分析几个埋藏极性基团的结构环境,这表明了其不稳定的结构原因。核磁共振光谱法能够检测质子,定位形成次优氢键网络的埋藏羟基和巯基。我们将其中一对埋藏的残基Tyr-236和Thr-253突变为Phe-236和Ile-253(如在旁系同源物p63和p73中发现的那样),使p53稳定了1.6千卡/摩尔。我们还检测到一个移动环构象的差异,这可能反映了生理上相关的替代构象的存在。温度对芳香族残基动力学的影响表明,该蛋白质还经历了几个可能与蛋白质内部替代氢键模式的存在相关的动态过程。p53似乎已经进化为具有动态性和不稳定性。