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Y34F突变型人线粒体锰超氧化物歧化酶的晶体结构及酪氨酸34的功能作用

Crystal structure of Y34F mutant human mitochondrial manganese superoxide dismutase and the functional role of tyrosine 34.

作者信息

Guan Y, Hickey M J, Borgstahl G E, Hallewell R A, Lepock J R, O'Connor D, Hsieh Y, Nick H S, Silverman D N, Tainer J A

机构信息

Department of Molecular Biology, The Scripps Research Institute, La Jolla, California 92037, USA.

出版信息

Biochemistry. 1998 Apr 7;37(14):4722-30. doi: 10.1021/bi972394l.

Abstract

Tyrosine 34 is a prominent and conserved residue in the active site of the manganese superoxide dismutases in organisms from bacteria to man. We have prepared the mutant containing the replacement Tyr 34 --> Phe (Y34F) in human manganese superoxide dismutase (hMnSOD) and crystallized it in two different crystal forms, orthorhombic and hexagonal. Crystal structures of hMnSOD Y34F have been solved to 1.9 A resolution in a hexagonal crystal form, denoted as Y34Fhex, and to 2.2 A resolution in an orthorhombic crystal form, denoted as Y34Fortho. Both crystal forms give structures that are closely superimposable with that of wild-type hMnSOD, with the phenyl rings of Tyr 34 in the wild type and Phe 34 in the mutant very similar in orientation. Therefore, in Y34F, a hydrogen-bonded relay that links the metal-bound hydroxyl to ordered solvent (Mn-OH to Gln 143 to Tyr 34 to H2O to His 30) is broken. Surprisingly, the loss of the Tyr 34 hydrogen bonds resulted in large increases in stability (measured by Tm), suggesting that the Tyr 34 hydroxyl does not play a role in stabilizing active-site architecture. The functional role of the side chain hydroxyl of Tyr 34 can be evaluated by comparison of the Y34F mutant with the wild-type hMnSOD. Both wild-type and Y34F had kcat/Km near 10(9) M-1 s-1, close to diffusion-controlled; however, Y34F showed kcat for maximal catalysis smaller by 10-fold than the wild type. In addition, the mutant Y34F was more susceptible to product inhibition by peroxide than the wild-type enzyme. This activity profile and the breaking of the hydrogen-bonding chain at the active site caused by the replacement Tyr 34 --> Phe suggest that Tyr 34 is a proton donor for O2* - reduction to H2O2 or is involved indirectly by orienting solvent or other residues for proton transfer. Up to 100 mM buffers in solution failed to enhance catalysis by either Y34F or the wild-type hMnSOD, suggesting that protonation from solution cannot enhance the release of the inhibiting bound peroxide ion, likely reflecting the enclosure of the active site by conserved residues as shown by the X-ray structures. The increased thermostability of the mutant Y34F and equal diffusion-controlled activity of Y34F and wild-type enzymes with normal superoxide levels suggest that evolutionary conservation of active-site residues in metalloenzymes reflects constraints from extreme rather than average cellular conditions. This new hypothesis that extreme rather than normal substrate concentrations are a powerful constraint on residue conservation may apply most strongly to enzyme defenses where the ability to meet extreme conditions directly affects cell survival.

摘要

酪氨酸34是从细菌到人类等生物体中锰超氧化物歧化酶活性位点上一个显著且保守的残基。我们制备了人锰超氧化物歧化酶(hMnSOD)中酪氨酸34被苯丙氨酸取代(Y34F)的突变体,并使其以两种不同的晶体形式结晶,即正交晶系和六方晶系。hMnSOD Y34F的晶体结构在六方晶系晶体形式(记为Y34Fhex)中已解析到1.9 Å分辨率,在正交晶系晶体形式(记为Y34Fortho)中已解析到2.2 Å分辨率。两种晶体形式给出的结构与野生型hMnSOD的结构紧密重叠,野生型中酪氨酸34的苯环和突变体中苯丙氨酸34的苯环取向非常相似。因此,在Y34F中,将金属结合的羟基与有序溶剂相连的氢键中继链(Mn - OH到Gln 143到Tyr 34到H2O到His 30)被破坏。令人惊讶的是,酪氨酸34氢键的丧失导致稳定性大幅增加(通过熔解温度测量),这表明酪氨酸34的羟基在稳定活性位点结构中不起作用。通过将Y34F突变体与野生型hMnSOD进行比较,可以评估酪氨酸34侧链羟基的功能作用。野生型和Y34F的催化常数与米氏常数之比(kcat/Km)都接近10⁹ M⁻¹ s⁻¹,接近扩散控制;然而,Y34F在最大催化时的催化常数(kcat)比野生型小10倍。此外,突变体Y34F比野生型酶更容易受到过氧化物的产物抑制。这种活性特征以及由酪氨酸34被苯丙氨酸取代导致的活性位点氢键链的断裂表明,酪氨酸34是将超氧阴离子还原为过氧化氢的质子供体,或者通过使溶剂或其他残基定向进行质子转移而间接参与其中。溶液中高达100 mM的缓冲液都未能增强Y34F或野生型hMnSOD的催化作用,这表明溶液中的质子化不能增强抑制性结合过氧化物离子的释放,这可能反映了如X射线结构所示活性位点被保守残基包围。突变体Y34F热稳定性的增加以及Y34F和野生型酶在正常超氧水平下具有相等的扩散控制活性表明,金属酶中活性位点残基的进化保守性反映的是来自极端而非平均细胞条件的限制。这个新假设,即极端而非正常底物浓度是对残基保守性的强大限制,可能最强烈地适用于酶防御,因为应对极端条件的能力直接影响细胞存活。

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