Hua Q X, Shoelson S E, Weiss M A
Department of Biological Chemistry and Molecular Pharmacology, Harvard Medical School, Boston, Massachusetts 02115.
Biochemistry. 1992 Dec 1;31(47):11940-51. doi: 10.1021/bi00162a037.
Insulin's mechanism of receptor binding is not well understood despite extensive study by mutagenesis and X-ray crystallography. Of particular interest are "anomalous" analogues whose bioactivities are not readily rationalized by crystal structures. Here the structure and dynamics of one such analogue (GlyB24-insulin) are investigated by circular dichroism (CD) and isotope-aided 2D-NMR spectroscopy. The mutant insulin retains near-native receptor-binding affinity despite a nonconservative substitution (PheB24-->Gly) in the receptor-binding surface. Relative to native insulin, GlyB24-insulin exhibits reduced dimerization; the monomer (the active species) exhibits partial loss of ordered structure, as indicated by CD studies and motional narrowing of selected 1H-NMR resonance. 2D-NMR studies demonstrate that the B-chain beta-turn (residues B20-23) and beta-strand (residues B24-B28) are destabilized; essentially native alpha-helical secondary structure (residues A3-A8, A13-A18, and B9-B19) is otherwise maintained. 13C-Isotope-edited NOESY studies demonstrate that long-range contacts observed between the B-chain beta-strand and the alpha-helical core in native insulin are absent in the mutant. Implications for the mechanism of insulin's interaction with its receptor are discussed.
尽管通过诱变和X射线晶体学进行了广泛研究,但胰岛素与受体结合的机制仍未得到很好的理解。特别令人感兴趣的是“异常”类似物,其生物活性难以通过晶体结构进行合理解释。在此,通过圆二色性(CD)和同位素辅助二维核磁共振光谱研究了一种这样的类似物(GlyB24-胰岛素)的结构和动力学。尽管在受体结合表面存在非保守取代(PheB24→Gly),但突变胰岛素仍保留了接近天然的受体结合亲和力。相对于天然胰岛素,GlyB24-胰岛素的二聚化程度降低;如CD研究和选定的1H-NMR共振的运动变窄所示,单体(活性形式)的有序结构部分丧失。二维核磁共振研究表明,B链β-转角(残基B20-23)和β-链(残基B24-B28)不稳定;否则基本维持天然的α-螺旋二级结构(残基A3-A8、A13-A18和B9-B19)。13C同位素编辑的NOESY研究表明,突变体中不存在天然胰岛素中B链β-链与α-螺旋核心之间观察到的长程接触。讨论了其对胰岛素与其受体相互作用机制的影响。