Bennett B, Holz R C
Department of Chemistry and Biochemistry, Utah State University, Logan, Utah 84322-0300, USA.
Biochemistry. 1997 Aug 12;36(32):9837-46. doi: 10.1021/bi970735p.
The Co(II)Zn(II)- and Zn(II)Co(II)-substituted derivatives of the aminopeptidase from Aeromonas proteolytica (AAP) were probed by EPR spectroscopy. EPR spectra of the high-spin S = 3/2 Co(II) ions in [CoZn(AAP)] and [ZnCo(AAP)] indicated that each metal binding site provides a spectroscopically distinct signature. For [CoZn(AAP)], subtraction of EPR spectra recorded at pH 7.5 and 10 revealed that two species were present and that the relative contributions to each of the experimental spectra were pH-dependent. The first EPR species, predominant at lower pH values, was simulated as a relatively featureless axial signal with geff values of 2.20, 3.92, and 5.23 which correspond to an Ms = |+/-1/2> ground state transition with a greal of 2.29 and an E/D of 0.1. The second species, predominant at high pH, was simulated with geff values of 1.80, 2.75, and 6.88 and exhibited a characteristic eight-line 59Co hyperfine pattern with an Az(59Co) of 7.0 mT. These parameters correspond to an Ms = |+/-1/2> ground state transition with a greal of 2.54; however, the signal exhibited marked rhombicity (E/D = 0.32) indicative of an asymmetric tetrahedral or five-coordinate Co(II) ion. Summation of these two species provided an excellent simulation of the observed [CoZn(AAP)] EPR spectrum. The EPR spectrum of [ZnCo(AAP)] also contained two species, at least one of which also exhibited 59Co hyperfine features. However, this signal exhibited little pH dependence, and individual species could not be isolated. The addition of the competitive inhibitor 1-butaneboronic acid (BuBA) to [CoZn(AAP)] resulted in a distinct change in the EPR spectrum; however, addition of BuBA to [ZnCo(AAP)] left the EPR spectrum completely unperturbed. These data indicate that BuBA binds only to the first metal binding site in AAP and does not interact with the second site. On the basis of the X-ray crystallographic data for the transition state analog-inhibited complexes of AAP and the aminopeptidase from bovine lens, BuBA was reclassified as a substrate analog inhibitor rather than a transition state analog inhibitor as previously suggested [Baker, J. O., & Prescott, J. M. (1983) Biochemistry 22, 5322-5331]. From difference spectroscopy and from the simulation of the [CoZn(AAP)] EPR spectrum, a third signal appearing upon BuBA binding was isolated. This signal was simulated with geff values of 2.08, 3. 15, and 6.15 which correspond to an Ms = |+/-1/2> ground state transition with a greal of 2.41 and an E/D of 0.22. This simulation also invoked an eight-line unresolved 59Co hyperfine pattern with an Az(59Co) value of 4.0 mT. Summation of the these three species provided an excellent simulation of the observed [CoZn(AAP)] + BuBA EPR spectrum at both pH values. This work establishes that substrate binds only to the first metal binding site in AAP and thus substantiates the first step in catalysis in the recently proposed mechanism of action for AAP [Bennett, B., & Holz, R. C. (1997) J. Am. Chem. Soc. 119, 1923-1933; Chen, G., et al. (1997) Biochemistry 36, 4278-4286].
利用电子顺磁共振波谱(EPR)对解蛋白气单胞菌(AAP)氨肽酶的Co(II)Zn(II) - 和Zn(II)Co(II) - 取代衍生物进行了研究。[CoZn(AAP)]和[ZnCo(AAP)]中高自旋S = 3/2 Co(II)离子的EPR谱表明,每个金属结合位点都提供了一个光谱上独特的特征。对于[CoZn(AAP)],在pH 7.5和10下记录的EPR谱相减显示存在两种物种,并且每种实验谱的相对贡献与pH有关。第一种EPR物种在较低pH值时占主导,被模拟为相对无特征的轴向信号,其geff值为2.20、3.92和5.23,对应于Ms = | + / - 1/2>基态跃迁,greal为2.29,E/D为0.1。第二种物种在高pH时占主导,其geff值模拟为1.80、2.75和6.88,并表现出特征性的八线59Co超精细模式,Az(59Co)为7.0 mT。这些参数对应于Ms = | + / - 1/2>基态跃迁,greal为2.54;然而,该信号表现出明显的菱形度(E/D = 0.32),表明是不对称四面体或五配位Co(II)离子。这两种物种的总和对观察到的[CoZn(AAP)] EPR谱提供了出色的模拟。[ZnCo(AAP)]的EPR谱也包含两种物种,其中至少一种也表现出59Co超精细特征。然而,该信号几乎没有pH依赖性,并且无法分离出单个物种。向[CoZn(AAP)]中加入竞争性抑制剂1 - 丁硼烷酸(BuBA)导致EPR谱发生明显变化;然而,向[ZnCo(AAP)]中加入BuBA使EPR谱完全不受干扰。这些数据表明BuBA仅与AAP中的第一个金属结合位点结合,而不与第二个位点相互作用。基于AAP和牛晶状体氨肽酶的过渡态类似物抑制复合物的X射线晶体学数据,BuBA被重新分类为底物类似物抑制剂,而不是先前提出的过渡态类似物抑制剂[Baker,J. O.,& Prescott,J. M.(1983)Biochemistry 22,5322 - 5331]。通过差示光谱法和[CoZn(AAP)] EPR谱的模拟,分离出了BuBA结合时出现的第三个信号。该信号的geff值模拟为2.08、3.15和6.15,对应于Ms = | + / - 1/2>基态跃迁,greal为2.41,E/D为0.22。该模拟还产生了一个八线未解析的59Co超精细模式,Az(59Co)值为4.0 mT。这三种物种的总和对观察到的[CoZn(AAP)] + BuBA在两个pH值下的EPR谱提供了出色的模拟。这项工作确定底物仅与AAP中的第一个金属结合位点结合,从而证实了最近提出的AAP作用机制中催化的第一步[Bennett,B.,& Holz,R. C.(1997)J. Am. Chem. Soc. 119,1923 - 1933;Chen,G.等人(1997)Biochemistry 36,4278 - 4286]。