Department of Chemistry and Biochemistry, University of Texas at Austin, Austin, Texas, USA.
Protein Sci. 2010 May;19(5):974-86. doi: 10.1002/pro.375.
Human small C-terminal domain phosphatase 1 (Scp1) modulates the phosphorylation state of the C-terminal domain (CTD) of eukaryotic RNA polymerase II (RNAP II), with preference for phosphorylated Ser5 in the tandem heptad repeats of the CTD. Additionally, Scp1 was identified as a conserved regulator of neuronal stem cell development. Scp1 is a member of haloacid dehalogenase (HAD) superfamily, whose catalysis depends on a Mg(2+) ion and a DXDX(T/V) motif. The first Asp of the motif is identified as the nucleophile that is subject to phosphorylation leading to a phosphoryl-aspartate intermediate. This high-energy mixed anhydride intermediate is subsequently hydrolyzed to regenerate the enzyme. In the present study, we successfully captured the phosphoryl-aspartate intermediate in the crystal structure of a Scp1D206A mutant soaked with para-nitrophenyl phosphate (pNPP), providing strong evidence for the proposed mechanism. Furthermore, steady-state kinetic analysis of a variety of Scp1 mutants revealed the importance of Asp206 in Mg(2+) coordination mediated by a water molecule. Overall, we captured the snapshots of the phosphoryl transfer reaction at each stage of Scp1-mediated catalysis. Through structural-based sequence alignment, we show that the spatial position of the D206 side chain is strictly conserved throughout HAD family. Our results strongly suggest that Asp206 and its equivalent residues in other HAD family members play important structural and possible mechanistic roles.
人源小分子 C 端磷酸酶 1(Scp1)可调节真核 RNA 聚合酶 II(RNAP II)C 端结构域(CTD)的磷酸化状态,对 CTD 串联七肽重复序列中的磷酸化 Ser5 具有偏好性。此外,Scp1 被鉴定为神经元干细胞发育的保守调控因子。Scp1 是卤酸脱卤酶(HAD)超家族的成员,其催化依赖于一个 Mg2+离子和一个 DXDX(T/V)基序。该基序的第一个 Asp 被鉴定为亲核试剂,其易受磷酸化作用影响,从而形成磷酸化天冬氨酸中间产物。该高能混合酸酐中间产物随后会水解,以再生酶。在本研究中,我们通过对 Scp1D206A 突变体浸泡于对硝基苯磷酸(pNPP)的晶体结构进行解析,成功捕获了磷酸化天冬氨酸中间产物,为所提出的机制提供了有力证据。此外,对多种 Scp1 突变体的稳态动力学分析表明,Asp206 在水分子介导的 Mg2+配位中具有重要作用。总的来说,我们捕获了 Scp1 介导的催化反应各个阶段的磷酸转移反应的快照。通过基于结构的序列比对,我们表明 D206 侧链的空间位置在整个 HAD 家族中严格保守。我们的研究结果强烈表明,Asp206 及其在其他 HAD 家族成员中的等效残基发挥着重要的结构和可能的机制作用。