Gadda Giovanni
Department of Chemistry, Georgia State University, Atlanta, GA 30302-4098, USA.
Biochim Biophys Acta. 2003 Aug 21;1650(1-2):4-9. doi: 10.1016/s1570-9639(03)00188-2.
The FAD-dependent choline oxidase catalyzes the four-electron oxidation of choline to glycine-betaine, with betaine-aldehyde as intermediate. The enzyme is capable of accepting either choline or betaine-aldehyde as a substrate, allowing the investigation of the reaction mechanism for both the conversion of choline to betaine-aldehyde and of betaine-aldehyde to glycine-betaine. In the present study, pH and deuterium kinetic isotope effects with [1,2-2H(4)]-choline were used to study the mechanism of oxidation of choline to betaine-aldehyde. The V/K and V(max) pH-profiles increased to limiting values with increasing pH, suggesting the presence of a catalytic base essential for catalysis at the enzyme active site. From the V/K pH-profile with [1,2-2H(4)]-choline, a pK(a) of 8.0 was determined for the catalytic base. This pK(a) was shifted to 7.5 in the V/K pH-profile with choline, indicating a significant commitment to catalysis with this substrate. In agreement with this conclusion, the D(V/K) values decreased from a limiting value of 12.4 below pH 6.5 to a limiting value of 4.1 above pH 9.5. The large D(V/K) values at low pH are consistent with carbon-hydrogen bond cleavage of choline being nearly irreversible and fully rate-limiting at low pH. Based on comparison of amino acid sequences and previous structural and mechanistic studies on other members of the GMC oxidoreductase superfamily, the identity of the catalytic base of choline oxidase is proposed.
依赖黄素腺嘌呤二核苷酸(FAD)的胆碱氧化酶催化胆碱经四电子氧化生成甘氨酸 - 甜菜碱,甜菜碱醛为中间产物。该酶能够接受胆碱或甜菜碱醛作为底物,从而可以研究胆碱转化为甜菜碱醛以及甜菜碱醛转化为甘氨酸 - 甜菜碱的反应机制。在本研究中,利用pH值和[1,2 - 2H(4)] - 胆碱的氘动力学同位素效应来研究胆碱氧化为甜菜碱醛的机制。随着pH值升高,V/K和V(max)的pH曲线上升至极限值,表明在酶活性位点存在催化所必需的催化碱。根据[1,2 - 2H(4)] - 胆碱的V/K pH曲线,确定催化碱的pK(a)为8.0。在胆碱的V/K pH曲线中,该pK(a)值变为7.5,表明该底物对催化有显著作用。与此结论一致,D(V/K)值从pH 6.5以下的极限值12.4降至pH 9.5以上的极限值4.1。低pH值下较大的D(V/K)值与胆碱碳氢键断裂在低pH时几乎不可逆且完全限速一致。基于氨基酸序列比较以及先前对GMC氧化还原酶超家族其他成员的结构和机制研究,提出了胆碱氧化酶催化碱的身份。