Hurley Thomas D, Yang Jie, Zhang Lili, Goodwin Kristie D, Zou Qin, Cortese Marc, Dunker A Keith, DePaoli-Roach Anna A
Department of Biochemistry and Molecular Biology, Indiana University School of Medicine, Indianapolis, Indiana 46202.
Department of Biochemistry and Molecular Biology, Indiana University School of Medicine, Indianapolis, Indiana 46202.
J Biol Chem. 2007 Sep 28;282(39):28874-28883. doi: 10.1074/jbc.M703472200. Epub 2007 Jul 18.
The functional specificity of type 1 protein phosphatases (PP1) depends on the associated regulatory/targeting and inhibitory subunits. To gain insights into the mechanism of PP1 regulation by inhibitor-2, an ancient and intrinsically disordered regulator, we solved the crystal structure of the complex to 2.5A resolution. Our studies show that, when complexed with PP1c, I-2 acquires three regions of order: site 1, residues 12-17, binds adjacent to a region recognized by many PP1 regulators; site 2, amino acids 44-56, interacts along the RVXF binding groove through an unsuspected sequence, KSQKW; and site 3, residues 130-169, forms alpha-helical regions that lie across the substrate-binding cleft. Specifically, residues 148-151 interact at the catalytic center, displacing essential metal ions, accounting for both rapid inhibition and slower inactivation of PP1c. Thus, our structure provides novel insights into the mechanism of PP1 inhibition and subsequent reactivation, has broad implications for the physiological regulation of PP1, and highlights common inhibitory interactions among phosphoprotein phosphatase family members.
1型蛋白磷酸酶(PP1)的功能特异性取决于相关的调节/靶向亚基和抑制亚基。为了深入了解由抑制剂2(一种古老且内在无序的调节剂)对PP1的调节机制,我们解析了该复合物的晶体结构,分辨率达到2.5埃。我们的研究表明,与PP1c结合时,I-2获得了三个有序区域:位点1,残基12 - 17,与许多PP1调节剂识别的区域相邻结合;位点2,氨基酸44 - 56,通过一个意想不到的序列KSQKW沿着RVXF结合凹槽相互作用;位点3,残基130 - 169,形成横跨底物结合裂隙的α螺旋区域。具体而言,残基148 - 151在催化中心相互作用,取代必需的金属离子,这解释了PP1c的快速抑制和较慢失活。因此,我们的结构为PP1抑制及随后的再激活机制提供了新的见解,对PP1的生理调节具有广泛影响,并突出了磷蛋白磷酸酶家族成员之间常见的抑制性相互作用。