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抗原-抗体蛋白质-蛋白质复合物中结合相互作用的突变分析。

A mutational analysis of binding interactions in an antigen-antibody protein-protein complex.

作者信息

Dall'Acqua W, Goldman E R, Lin W, Teng C, Tsuchiya D, Li H, Ysern X, Braden B C, Li Y, Smith-Gill S J, Mariuzza R A

机构信息

Center for Advanced Research in Biotechnology, University of Maryland Biotechnology Institute, Rockville 20850, USA.

出版信息

Biochemistry. 1998 Jun 2;37(22):7981-91. doi: 10.1021/bi980148j.

Abstract

Alanine scanning mutagenesis, double mutant cycles, and X-ray crystallography were used to characterize the interface between the anti-hen egg white lysozyme (HEL) antibody D1.3 and HEL. Twelve out of the 13 nonglycine contact residues on HEL, as determined by the high-resolution crystal structure of the D1.3-HEL complex, were individually truncated to alanine. Only four positions showed a DeltaDeltaG (DeltaGmutant - DeltaGwild-type) of greater than 1.0 kcal/mol, with HEL residue Gln121 proving the most critical for binding (DeltaDeltaG = 2.9 kcal/mol). These residues form a contiguous patch at the periphery of the epitope recognized by D1.3. To understand how potentially disruptive mutations in the antigen are accommodated in the D1.3-HEL interface, we determined the crystal structure to 1.5 A resolution of the complex between D1.3 and HEL mutant Asp18 --> Ala. This mutation results in a DeltaDeltaG of only 0.3 kcal/mol, despite the loss of a hydrogen bond and seven van der Waals contacts to the Asp18 side chain. The crystal structure reveals that three additional water molecules are stably incorporated in the antigen-antibody interface at the site of the mutation. These waters help fill the cavity created by the mutation and form part of a rearranged solvent network linking the two proteins. To further dissect the energetics of specific interactions in the D1.3-HEL interface, double mutant cycles were carried out to measure the coupling of 14 amino acid pairs, 10 of which are in direct contact in the crystal structure. The highest coupling energies, 2.7 and 2.0 kcal/mol, were measured between HEL residue Gln121 and D1.3 residues VLTrp92 and VLTyr32, respectively. The interaction between Gln121 and VLTrp92 consists of three van der Waals contacts, while the interaction of Gln121 with VLTyr32 is mediated by a hydrogen bond. Surprisingly, however, most cycles between interface residues in direct contact in the crystal structure showed no significant coupling. In particular, a number of hydrogen-bonded residue pairs were found to make no net contribution to complex stabilization. We attribute these results to accessibility of the mutation sites to water, such that the mutated residues exchange their interaction with each other to interact with water. This implies that the strength of the protein-protein hydrogen bonds in these particular cases is comparable to that of the protein-water hydrogen bonds they replace. Thus, the simple fact that two residues are in direct contact in a protein-protein interface cannot be taken as evidence that there necessarily exists a productive interaction between them. Rather, the majority of such contacts may be energetically neutral, as in the D1.3-HEL complex.

摘要

利用丙氨酸扫描诱变、双突变循环和X射线晶体学来表征抗鸡卵清溶菌酶(HEL)抗体D1.3与HEL之间的界面。根据D1.3 - HEL复合物的高分辨率晶体结构确定,HEL上13个非甘氨酸接触残基中的12个被逐个截短为丙氨酸。只有4个位置的ΔΔG(ΔG突变体 - ΔG野生型)大于1.0千卡/摩尔,结果表明HEL残基Gln121对结合最为关键(ΔΔG = 2.9千卡/摩尔)。这些残基在D1.3识别的表位外围形成一个连续的区域。为了了解抗原中潜在的破坏性突变如何在D1.3 - HEL界面中得到容纳,我们确定了D1.3与HEL突变体Asp18→Ala复合物的晶体结构,分辨率为1.5埃。尽管失去了与Asp18侧链的一个氢键和七个范德华接触,但该突变导致的ΔΔG仅为0.3千卡/摩尔。晶体结构显示,在突变位点有另外三个水分子稳定地结合在抗原 - 抗体界面中。这些水分子有助于填充由突变产生的空腔,并形成连接两种蛋白质的重排溶剂网络的一部分。为了进一步剖析D1.3 - HEL界面中特定相互作用的能量学,进行了双突变循环以测量14对氨基酸的耦合,其中10对在晶体结构中直接接触。分别在HEL残基Gln121与D1.3残基VLTrp92和VLTyr32之间测得最高的耦合能,分别为2.7和2.0千卡/摩尔。Gln121与VLTrp92之间的相互作用由三个范德华接触组成,而Gln121与VLTyr32的相互作用由一个氢键介导。然而,令人惊讶的是,晶体结构中直接接触的界面残基之间的大多数循环没有显示出明显的耦合。特别是,发现许多氢键连接的残基对对复合物稳定性没有净贡献。我们将这些结果归因于突变位点对水的可及性,使得突变残基彼此之间的相互作用交换为与水的相互作用。这意味着在这些特定情况下,蛋白质 - 蛋白质氢键的强度与它们所取代的蛋白质 - 水氢键的强度相当。因此,两个残基在蛋白质 - 蛋白质界面中直接接触这一简单事实不能被视为它们之间必然存在有效相互作用的证据。相反,正如在D1.3 - HEL复合物中一样,大多数这样的接触在能量上可能是中性的。

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