Balendiran G K, Molina J A, Xu Y, Torres-Martinez J, Stevens R, Focia P J, Eakin A E, Sacchettini J C, Craig S P
Department of Biochemistry and Biophysics, Texas A&M University, College Station 77843-2128, USA.
Protein Sci. 1999 May;8(5):1023-31. doi: 10.1110/ps.8.5.1023.
Site-directed mutagenesis was used to replace Lys68 of the human hypoxanthine phosphoribosyltransferase (HGPRTase) with alanine to exploit this less reactive form of the enzyme to gain additional insights into the structure activity relationship of HGPRTase. Although this substitution resulted in only a minimal (one- to threefold) increase in the Km values for binding pyrophosphate or phosphoribosylpyrophosphate, the catalytic efficiencies (k(cat)/Km) of the forward and reverse reactions were more severely reduced (6- to 30-fold), and the mutant enzyme showed positive cooperativity in binding of alpha-D-5-phosphoribosyl-1-pyrophosphate (PRPP) and nucleotide. The K68A form of the human HGPRTase was cocrystallized with 7-hydroxy [4,3-d] pyrazolo pyrimidine (HPP) and Mg PRPP, and the refined structure reported. The PRPP molecule built into the [(Fo - Fc)phi(calc)] electron density shows atomic interactions between the Mg PRPP and enzyme residues in the pyrophosphate binding domain as well as in a long flexible loop (residues Leu101 to Gly111) that closes over the active site. Loop closure reveals the functional roles for the conserved SY dipeptide of the loop as well as the molecular basis for one form of gouty arthritis (S103R). In addition, the closed loop conformation provides structural information relevant to the mechanism of catalysis in human HGPRTase.
利用定点诱变技术将人次黄嘌呤磷酸核糖转移酶(HGPRTase)的赖氨酸68替换为丙氨酸,以利用该酶这种反应活性较低的形式,进一步深入了解HGPRTase的结构活性关系。尽管这种替换仅使焦磷酸或磷酸核糖焦磷酸结合的Km值有最小程度(1至3倍)的增加,但正向和反向反应的催化效率(k(cat)/Km)却有更显著的降低(6至30倍),并且突变酶在α-D-5-磷酸核糖-1-焦磷酸(PRPP)和核苷酸结合方面表现出正协同性。人HGPRTase的K68A形式与7-羟基[4,3-d]吡唑并嘧啶(HPP)和Mg PRPP共结晶,并报道了其精制结构。构建到[(Fo - Fc)phi(calc)]电子密度中的PRPP分子显示了Mg PRPP与焦磷酸结合域以及在活性位点上方闭合的长柔性环(残基Leu101至Gly111)中的酶残基之间的原子相互作用。环的闭合揭示了环中保守的SY二肽的功能作用以及一种痛风性关节炎(S103R)形式的分子基础。此外,闭环构象提供了与人类HGPRTase催化机制相关的结构信息。