Wollert Thomas, Heinz Dirk W, Schubert Wolf-Dieter
Molecular Host-Pathogen Interactions, Helmholtz Centre for Infection Research, Inhoffenstrasse 7, D-38124 Braunschweig, Germany.
Proc Natl Acad Sci U S A. 2007 Aug 28;104(35):13960-5. doi: 10.1073/pnas.0702199104. Epub 2007 Aug 22.
Biological processes essentially all depend on the specific recognition between macromolecules and their interaction partners. Although many such interactions have been characterized both structurally and biophysically, the thermodynamic effects of small atomic changes remain poorly understood. Based on the crystal structure of the bacterial invasion protein internalin (InlA) of Listeria monocytogenes in complex with its human receptor E-cadherin (hEC1), we analyzed the interface to identify single amino acid substitutions in InlA that would potentially improve the overall quality of interaction and hence increase the weak binding affinity of the complex. Dissociation constants of InlA-variant/hEC1 complexes, as well as enthalpy and entropy of binding, were quantified by isothermal titration calorimetry. All single substitutions indeed significantly increase binding affinity. Structural changes were verified crystallographically at < or =2.0-A resolution, allowing thermodynamic characteristics of single substitutions to be rationalized structurally and providing unique insights into atomic contributions to binding enthalpy and entropy. Structural and thermodynamic data of all combinations of individual substitutions result in a thermodynamic network, allowing the source of cooperativity between distant recognition sites to be identified. One such pair of single substitutions improves affinity 5,000-fold. We thus demonstrate that rational reengineering of protein complexes is possible by making use of physically distant hot spots of recognition.
生物过程基本上都依赖于大分子与其相互作用伙伴之间的特异性识别。尽管许多这样的相互作用在结构和生物物理方面都已得到表征,但微小原子变化的热力学效应仍知之甚少。基于单核细胞增生李斯特菌的细菌入侵蛋白内化素(InlA)与其人类受体E-钙黏蛋白(hEC1)复合物的晶体结构,我们分析了两者的界面,以确定InlA中可能改善相互作用整体质量从而增加复合物弱结合亲和力的单个氨基酸取代。通过等温滴定量热法对InlA变体/hEC1复合物的解离常数以及结合焓和熵进行了定量分析。所有单个取代确实都显著提高了结合亲和力。在分辨率小于或等于2.0埃的情况下通过晶体学验证了结构变化,从而能够从结构上合理解释单个取代的热力学特性,并为原子对结合焓和熵的贡献提供独特见解。单个取代所有组合的结构和热力学数据形成了一个热力学网络,从而能够确定远距离识别位点之间协同作用的来源。一对这样的单个取代将亲和力提高了5000倍。因此,我们证明通过利用物理上相距较远的识别热点对蛋白质复合物进行合理的重新设计是可行的。