Grossoehme Nicholas E, Mulrooney Scott B, Hausinger Robert P, Wilcox Dean E
Department of Chemistry, Dartmouth College, Hanover, New Hampshire 03755, USA.
Biochemistry. 2007 Sep 18;46(37):10506-16. doi: 10.1021/bi700171v. Epub 2007 Aug 21.
The two Ni2+ ions in the urease active site are delivered by the metallochaperone UreE, whose metal binding properties are central to the assembly of this metallocenter. Isothermal titration calorimetry (ITC) has been used to quantify the stoichiometry, affinity, and thermodynamics of Ni2+, Cu2+, and Zn2+ binding to the well-studied C-terminal truncated H144UreE from Klebsiella aerogenes, Ni2+ binding to the wild-type K. aerogenes UreE protein, and Ni2+ and Zn2+ binding to the wild-type UreE protein from Bacillus pasteurii. The stoichiometries and affinities obtained by ITC are in good agreement with previous equilibrium dialysis results, after differences in pH and buffer competition are considered, but the concentration of H144UreE was found to have a significant effect on metal binding stoichiometry. While two metal ions bind to the H144UreE dimer at concentrations <10 microM, three Ni2+ or Cu2+ ions bind to 25 microM dimeric protein with ITC data indicating sequential formation of Ni/Cu(H144UreE)4 and then (Ni/Cu)2(H144UreE)4, or Ni/Cu(H144UreE)2, followed by the binding of four additional metal ions per tetramer, or two per dimer. The thermodynamics indicate that the latter two metal ions bind at sites corresponding to the two binding sites observed at lower protein concentrations. Ni2+ binding to UreE from K. aerogenes is an enthalpically favored process but an entropically driven process for the B. pasteurii protein, indicating chemically different Ni2+ coordination to the two proteins. A relatively small negative value of DeltaCp is associated with Ni2+ and Cu2+ binding to H144*UreE at low protein concentrations, consistent with binding to surface sites and small changes in the protein structure.
脲酶活性位点中的两个镍离子由金属伴侣蛋白UreE提供,其金属结合特性对于该金属中心的组装至关重要。等温滴定量热法(ITC)已被用于量化镍离子、铜离子和锌离子与来自产气克雷伯菌的经过充分研究的C端截短型H144UreE、镍离子与野生型产气克雷伯菌UreE蛋白以及镍离子和锌离子与巴氏芽孢杆菌野生型UreE蛋白结合的化学计量、亲和力和热力学。在考虑pH值和缓冲液竞争差异后,ITC获得的化学计量和亲和力与先前的平衡透析结果高度一致,但发现H144UreE的浓度对金属结合化学计量有显著影响。当浓度低于10微摩尔时,两个金属离子与H144UreE二聚体结合,而对于25微摩尔的二聚体蛋白,三个镍离子或铜离子结合,ITC数据表明依次形成Ni/Cu(H144UreE)4,然后是(Ni/Cu)2(H144UreE)4,或者是Ni/Cu(H144UreE)2,随后每个四聚体再结合另外四个金属离子,或者每个二聚体结合两个。热力学表明,后两个金属离子结合在与较低蛋白浓度下观察到的两个结合位点相对应的位点。镍离子与产气克雷伯菌的UreE结合是一个焓有利的过程,但对于巴氏芽孢杆菌的蛋白来说是一个熵驱动的过程,这表明镍离子与这两种蛋白的配位在化学上有所不同。在低蛋白浓度下,DeltaCp的相对较小负值与镍离子和铜离子与H144*UreE的结合相关,这与结合到表面位点以及蛋白结构的微小变化一致。