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底物和抑制剂与干酪乳杆菌二氢叶酸还原酶结合的紫外差光谱研究。

Ultraviolet difference-spectroscopic studies of substrate and inhibitor binding to Lactobacillus casei dihydrofolate reductase.

作者信息

Hood K, Roberts G C

出版信息

Biochem J. 1978 May 1;171(2):357-66. doi: 10.1042/bj1710357.

Abstract

The u.v. difference spectra generated when methotrexate, trimethoprim or folate bind to Lactobacillus casei dihydrofolate reductase were analysed. The difference spectrum producted by methotrexate binding is shown to consist of three components: (a) one closely resembling that observed on protonation of methotrexate, reflecting an increased degree of protonation on binding; (b) a pH-independent contribution corresponding to a 40 nm shift to longer wavelengths of a single absorption band of methotrexate: (c) a component arising from perturbation of tryptophan residue(s) of the enzyme. Quantitative analysis of the pH-dependence of component (a) shows that pK of methotrexate is increased from 5.35 to 8.55 (+/-0.10) on binding. In contrast, folate is not protonated when bound to the enzyme at neutral pH. At pH7.5, where methotrexate is bound 2000 times more tightly than folate, one-third of the difference in binding energy between the two compounds arises from the difference in chaarge stage. A similar analysis of the difference spectra generated on trimethoprim binding demonstrates that this compound, too, shows an increase in pK on binding but only from 7.22 to 7.90 (+/-0.10), suggesting that its 2,4-diaminopyrimidine ring does not bind to the enzyme in precisely the same way as the corresponding moiety of methotrexate.

摘要

分析了甲氨蝶呤、甲氧苄啶或叶酸与干酪乳杆菌二氢叶酸还原酶结合时产生的紫外差示光谱。甲氨蝶呤结合产生的差示光谱显示由三个成分组成:(a) 一个与甲氨蝶呤质子化时观察到的光谱非常相似,反映了结合时质子化程度增加;(b) 一个与甲氨蝶呤单个吸收带向更长波长的40nm位移相对应的与pH无关的成分;(c) 一个由酶的色氨酸残基扰动引起的成分。对成分(a)的pH依赖性进行定量分析表明,甲氨蝶呤的pK在结合时从5.35增加到8.55(±0.10)。相比之下,叶酸在中性pH与酶结合时不会质子化。在pH7.5时,甲氨蝶呤的结合比叶酸紧密2000倍,这两种化合物结合能差异的三分之一源于电荷状态的差异。对甲氧苄啶结合时产生的差示光谱进行类似分析表明,该化合物结合时pK也增加,但仅从7.22增加到7.90(±0.10),这表明其2,4-二氨基嘧啶环与酶的结合方式与甲氨蝶呤的相应部分不完全相同。

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引用本文的文献

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[Electronic structure and mode of action of folic acid antimetabolites].
Biochim Biophys Acta. 1961 Sep 16;52:266-80. doi: 10.1016/0006-3002(61)90676-x.
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ON THE MECHANISM OF FOLIC ACID REDUCTASE INHIBITION.
Biochim Biophys Acta. 1964 Aug 26;89:232-41. doi: 10.1016/0926-6569(64)90212-3.
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Role of tryptophan in dihydrofolate reductase.
Biochemistry. 1972 Sep 26;11(20):3775-9. doi: 10.1021/bi00770a016.

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