Kriwacki R W, Hengst L, Tennant L, Reed S I, Wright P E
Department of Molecular Biology, Scripps Research Institute, La Jolla, CA 92037, USA.
Proc Natl Acad Sci U S A. 1996 Oct 15;93(21):11504-9. doi: 10.1073/pnas.93.21.11504.
The cyclin-dependent kinase (Cdk) inhibitor p21Waf1/Cip1/Sdi1, important for p53-dependent cell cycle control, mediates G1/S arrest through inhibition of Cdks and possibly through inhibition of DNA replication. Cdk inhibition requires a sequence of approximately 60 amino acids within the p21 NH2 terminus. We show, using proteolytic mapping, circular dichroism spectropolarimetry, and nuclear magnetic resonance spectroscopy, that p21 and NH2-terminal fragments that are active as Cdk inhibitors lack stable secondary or tertiary structure in the free solution state. In sharp contrast to the disordered free state, however, the p21 NH2 terminus adopts an ordered stable conformation when bound to Cdk2, as shown directly by NMR spectroscopy. We have, thus, identified a striking disorder-order transition for p21 upon binding to one of its biological targets, Cdk2. This structural transition has profound implications in light of the ability of p21 to bind and inhibit a diverse family of cyclin-Cdk complexes, including cyclin A-Cdk2, cyclin E-Cdk2, and cyclin D-Cdk4. Our findings suggest that the flexibility, or disorder, of free p21 is associated with binding diversity and offer insights into the role for structural disorder in mediating binding specificity in biological systems. Further, these observations challenge the generally accepted view of proteins that stable secondary and tertiary structure are prerequisites for biological activity and suggest that a broader view of protein structure should be considered in the context of structure-activity relationships.
细胞周期蛋白依赖性激酶(Cdk)抑制剂p21Waf1/Cip1/Sdi1对p53依赖性细胞周期控制很重要,它通过抑制Cdk并可能通过抑制DNA复制来介导G1/S期阻滞。抑制Cdk需要p21氨基末端内大约60个氨基酸的序列。我们通过蛋白水解图谱、圆二色光谱偏振法和核磁共振光谱法表明,作为Cdk抑制剂具有活性的p21和氨基末端片段在自由溶液状态下缺乏稳定的二级或三级结构。然而,与无序的自由状态形成鲜明对比的是,如核磁共振光谱直接显示的那样,p21氨基末端在与Cdk2结合时会形成有序的稳定构象。因此,我们发现p21与它的一个生物学靶点Cdk2结合时会发生显著的无序-有序转变。鉴于p21能够结合并抑制多种细胞周期蛋白-Cdk复合物家族,包括细胞周期蛋白A-Cdk2、细胞周期蛋白E-Cdk2和细胞周期蛋白D-Cdk4,这种结构转变具有深远的意义。我们的研究结果表明,游离p21的灵活性或无序性与结合多样性相关,并为结构无序在介导生物系统中的结合特异性方面的作用提供了见解。此外,这些观察结果挑战了普遍接受的蛋白质观点,即稳定的二级和三级结构是生物活性的先决条件,并表明在结构-活性关系的背景下应考虑更广泛的蛋白质结构观点。