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葡萄球菌核酸酶中反式/顺式脯氨酸异构化与蛋白质稳定性之间的偶联

Coupling between trans/cis proline isomerization and protein stability in staphylococcal nuclease.

作者信息

Truckses D M, Somoza J R, Prehoda K E, Miller S C, Markley J L

机构信息

Department of Biochemistry, College of Agricultural and Life Sciences, University of Wisconsin-Madison 53706, USA.

出版信息

Protein Sci. 1996 Sep;5(9):1907-16. doi: 10.1002/pro.5560050917.

Abstract

The nucleases A produced by two strains of Staphylococcus aureus, which have different stabilities, differ only in the identity of the single amino acid at residue 124. The nuclease from the Foggi strain of S. aureus (by convention nuclease WT), which contains His124, is 1.9 kcal.mol-1 less stable (at pH 5.5 and 20 degrees C) than the nuclease from the V8 strain (by convention nuclease H124L), which contains Leu124. In addition, the population of the trans conformer at the Lys116-Pro117 peptide bond, as observed by NMR spectroscopy, is different for the two variants: about 15% for nuclease WT and 9% for nuclease H124L. In order to improve our understanding of the origin of these differences, we compared the properties of WT and H124L with those of the H124A and H124I variants. We discovered a correlation between effects of different residues at this position on protein stability and on stabilization of the cis configuration of the Lys116-Pro117 peptide bond. In terms of free energy, approximately 17% of the increase in protein stability manifests itself as stabilization of the cis configuration at Lys116-Pro117. This result implies that the differences in stability arise mainly from structural differences between the cis configurational isomers at Pro117 of the different variants at residue 124. We solved the X-ray structure of the cis form of the most stable variant, H124L, and compared it with the published high-resolution X-ray structure of the cis form of the most stable variant, WT (Hynes TR, Fox RO, 1991, Proteins Struct Funct Genet 10:92-105). The two structures are identical within experimental error, except for the side chain at residue 124, which is exposed in the models of both variants. Thus, the increased stability and changes in the trans/cis equilibrium of the Lys116-Pro117 peptide bond observed in H124L relative to WT are due to subtle structural changes that are not observed by current structure determination technique. Residue 124 is located in a helix. However, the stability changes are too large and follow the wrong order of stability to be explained simply by differences in helical propensity. A second site of conformational heterogeneity in native nuclease is found at the His46-Pro47 peptide bond, which is approximately 80% trans in both WT and H124L. Because proline to glycine substitutions at either residue 47 or 117 remove the structural heterogeneity at that position and increase protein stability, we determined the X-ray structures of H124L + P117G and H124L + P47G + P117G and the kinetic parameters of H124L, H124L + P47G, H124L + P117G, and H124L + P47G + P117G. The individual P117G and P47G mutations cause decreases in nuclease activity, with kcat affected more than Km, and their effects are additive. The P117G mutation in nuclease H124L leads to the same local conformational rearrangement described for the P117G mutant of WT (Hynes TR, Hodel A, Fox RO, 1994, Biochemistry 33:5021-5030). In both P117G mutants, the loop formed by residues 112-117 is located closer to the adjacent loop formed by residues 77-85, and residues 115-118 adopt a type I' beta-turn conformation with the Lys116-Gly117 peptide bond in the trans configuration, as compared with the parent protein in which these residues have a typeVIa beta-turn conformation with the Lys116-Pro117 peptide bond in the cis configuration. Addition of the P47G mutation appears not to cause any additional structural changes. However, the electron density for part of the loop containing this peptide bond was not strong enough to be interpreted.

摘要

两株金黄色葡萄球菌产生的核酸酶A具有不同的稳定性,它们仅在第124位残基处的单个氨基酸的一致性上存在差异。来自金黄色葡萄球菌Foggi菌株的核酸酶(按照惯例为核酸酶WT)含有His124,在pH 5.5和20℃时,其稳定性比来自V8菌株的核酸酶(按照惯例为核酸酶H124L)低1.9 kcal·mol⁻¹,后者含有Leu124。此外,通过核磁共振光谱观察到,两种变体在Lys116 - Pro117肽键处的反式构象体的比例不同:核酸酶WT约为15%,核酸酶H124L约为9%。为了更好地理解这些差异的起源,我们将WT和H124L的特性与H124A和H124I变体的特性进行了比较。我们发现该位置不同残基对蛋白质稳定性以及Lys116 - Pro117肽键顺式构型稳定性的影响之间存在相关性。就自由能而言,蛋白质稳定性增加的约17%表现为Lys116 - Pro117处顺式构型的稳定。该结果表明,稳定性差异主要源于第124位残基处不同变体在Pro117处顺式构型异构体之间的结构差异。我们解析了最稳定变体H124L的顺式形式的X射线结构,并将其与已发表的最稳定变体WT(Hynes TR,Fox RO,1991,Proteins Struct Funct Genet 10:92 - 105)的顺式形式的高分辨率X射线结构进行了比较。除了第124位残基的侧链在两种变体的模型中均暴露外,在实验误差范围内,这两种结构是相同的。因此,相对于WT,在H12四百一十二中观察到的Lys116 - Pro117肽键稳定性增加和反式/顺式平衡变化是由于当前结构测定技术未观察到的细微结构变化所致。第124位残基位于一个螺旋中。然而,稳定性变化太大且遵循错误的稳定性顺序,无法简单地用螺旋倾向差异来解释。天然核酸酶中另一个构象异质性位点位于His46 - Pro47肽键处,在WT和H124L中该肽键均约80%为反式。由于在第47位或第117位残基处脯氨酸替换为甘氨酸消除了该位置的结构异质性并增加了蛋白质稳定性,我们测定了H124L + P117G和H124L + P47G + P117G的X射线结构以及H124L、H124L + P47G、H124L + P117G和H124L + P47G + P117G的动力学参数。单个P117G和P47G突变导致核酸酶活性降低,其中kcat受影响大于Km,且它们的影响是累加的。核酸酶H124L中的P117G突变导致与WT的P117G突变体所描述的相同的局部构象重排(Hynes TR,Hodel A,Fox RO, 1994, Biochemistry 33:5021 - 5030)。在两个P117G突变体中,由残基112 - 117形成的环更靠近由残基77 - 85形成的相邻环,并且与亲本蛋白质相比,残基115 - 118采用I'型β - 转角构象,其中Lys116 - Gly117肽键为反式构型,而在亲本蛋白质中这些残基具有VIa型β - 转角构象,其中Lys116 - Pro117肽键为顺式构型。添加P47G突变似乎不会引起任何额外的结构变化。然而,包含该肽键的环的部分电子密度不够强,无法进行解析。

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