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二氢叶酸还原酶替代质子传递突变体的结构与功能

Structure and function of alternative proton-relay mutants of dihydrofolate reductase.

作者信息

David C L, Howell E E, Farnum M F, Villafranca J E, Oatley S J, Kraut J

机构信息

Department of Chemistry, University of California, San Diego, La Jolla 92093.

出版信息

Biochemistry. 1992 Oct 13;31(40):9813-22. doi: 10.1021/bi00155a038.

DOI:10.1021/bi00155a038
PMID:1356437
Abstract

Using site-specific mutagenesis, we have constructed two mutants of Escherichia coli dihydrofolate reductase (ecDHFR) to investigate further the function of a weakly acidic side chain at position 27 in substrate protonation: Asp27-->Glu (D27E) and Asp27-->Cys (D27C). The crystal structure of D27E ecDHFR in a binary complex with methotrexate shows that the side-chain oxygen atoms of Glu27 are in almost precisely the same location as those of Asp27 in the wild-type enzyme. Kinetic evidence indicates that Glu27 can indeed function efficiently in the proton relay to dihydrofolate. Even though vertebrate DHFRs all have a glutamic acid at the structurally equivalent position, the kinetic properties of Glu27 ecDHFR more closely resemble those of wild-type bacterial DHFRs than of vertebrate DHFRs. The D27C mutation produced an enzyme still capable of relaying a proton to dihydrofolate, but with the intrinsic pKa in its pH-activity profiles shifted upward to values characteristic of the more basic thiolate group. The crystal structure of the binary complex with methotrexate reveals two unexpected features: (1) the Cys27 sulfhydryl group does not point toward the pteridine-binding site, but the side chain of this residue is instead rotated 120 degrees to interact with a tyrosine side chain projecting from a neighboring beta-strand; (2) a bound ethanol molecule occupies a cavity adjacent to methotrexate. Ethanol is a component of the crystallization medium.

摘要

利用位点特异性诱变技术,我们构建了大肠杆菌二氢叶酸还原酶(ecDHFR)的两个突变体,以进一步研究27位弱酸性侧链在底物质子化中的作用:天冬氨酸27突变为谷氨酸(D27E)和天冬氨酸27突变为半胱氨酸(D27C)。D27E ecDHFR与甲氨蝶呤二元复合物的晶体结构表明,谷氨酸27的侧链氧原子与野生型酶中天冬氨酸27的侧链氧原子位置几乎完全相同。动力学证据表明,谷氨酸27确实能有效地在向二氢叶酸的质子传递中发挥作用。尽管脊椎动物的二氢叶酸还原酶在结构等效位置都有一个谷氨酸,但谷氨酸27 ecDHFR的动力学性质更类似于野生型细菌二氢叶酸还原酶,而不是脊椎动物二氢叶酸还原酶。D27C突变产生的一种酶仍然能够将质子传递给二氢叶酸,但其pH活性曲线中的固有pKa向上移动到更碱性的硫醇盐基团特征值。与甲氨蝶呤二元复合物的晶体结构揭示了两个意外特征:(1)半胱氨酸27的巯基并不指向蝶啶结合位点,而是该残基的侧链旋转120度,与相邻β链伸出的酪氨酸侧链相互作用;(2)一个结合的乙醇分子占据了与甲氨蝶呤相邻的一个腔。乙醇是结晶介质的一种成分。

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