Dubrovay Zsófia, Gáspári Zoltán, Hunyadi-Gulyás Eva, Medzihradszky Katalin F, Perczel András, Vértessy Beáta G
Institute of Enzymology, Biological Research Center, Hungarian Academy of Sciences, POB 7, H-1518, Budapest, Hungary.
J Biol Chem. 2004 Apr 23;279(17):17945-50. doi: 10.1074/jbc.M313644200. Epub 2004 Jan 14.
The catalytic mechanism of dUTP pyrophosphatase (dUTPase), responsible for the prevention of uracil incorporation into DNA, involves ordering of the flexible C terminus of the enzyme. This conformational shift is investigated by multidimensional NMR on the Drosophila enzyme. Flexible segments of the homotrimer give rise to sharp resonances in the (1)H-(15)N heteronuclear single-quantum coherence (HSQC) spectra, which are clearly distinguishable from the background resonances of the well folded protein globule. Binding of the product dUMP or the analogues dUDP and alpha,beta-imino-dUTP to the enzyme induces a conformational change reflected in the disappearance of eight sharp resonances. This phenomenon is interpreted as nucleotide binding-induced ordering of some residues upon the folded protein globule. Three-dimensional (15)N-edited (1)H-(15)N HSQC total correlation spectroscopy (TOCSY) and (1)H-(15)N HSQC nuclear Overhauser effect spectroscopy measurements allowed clear assignment of these eight specific resonance peaks. The residues identified correspond to the conserved C-terminal sequence motif, indicating that (i) this conformational shift is amenable to NMR studies in solution even in the large trimeric molecule and (ii) formation of the closed enzyme conformer in the case of the Drosophila enzyme does not require the complete triphosphate chain of the substrate. NMR titration of the enzyme with the nucleotide ligands as well as kinetic data indicated significant deviation from the model of independent active sites within the homotrimer. The results suggest allosterism in the eukaryotic dUTPase.
负责防止尿嘧啶掺入DNA的dUTP焦磷酸酶(dUTPase)的催化机制涉及该酶柔性C末端的有序排列。通过对果蝇dUTPase进行多维核磁共振研究了这种构象变化。同三聚体的柔性片段在1H-15N异核单量子相干(HSQC)谱中产生尖锐的共振峰,这与折叠良好的蛋白质球体的背景共振明显不同。产物dUMP或类似物dUDP和α,β-亚氨基-dUTP与该酶的结合诱导了一种构象变化,表现为八个尖锐共振峰的消失。这种现象被解释为核苷酸结合诱导折叠的蛋白质球体上一些残基的有序排列。三维15N编辑的1H-15N HSQC全相关谱(TOCSY)和1H-15N HSQC核Overhauser效应光谱测量能够清晰地归属这八个特定的共振峰。所鉴定出的残基对应于保守的C末端序列基序,这表明(i)即使在大型三聚体分子中,这种构象变化在溶液中也适合进行核磁共振研究,以及(ii)对于果蝇dUTPase而言,形成封闭的酶构象并不需要底物完整的三磷酸链。用核苷酸配体对该酶进行核磁共振滴定以及动力学数据表明,同三聚体内独立活性位点模型存在显著偏差。结果提示真核生物dUTPase中存在变构现象。