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利用基于结构的计算设计提高体内成熟治疗性抗体的亲和力

Affinity enhancement of an in vivo matured therapeutic antibody using structure-based computational design.

作者信息

Clark Louis A, Boriack-Sjodin P Ann, Eldredge John, Fitch Christopher, Friedman Bethany, Hanf Karl J M, Jarpe Matthew, Liparoto Stefano F, Li You, Lugovskoy Alexey, Miller Stephan, Rushe Mia, Sherman Woody, Simon Kenneth, Van Vlijmen Herman

机构信息

Biogen Idec, Inc., Cambridge, Massachusetts 02142, USA.

出版信息

Protein Sci. 2006 May;15(5):949-60. doi: 10.1110/ps.052030506. Epub 2006 Apr 5.

Abstract

Improving the affinity of a high-affinity protein-protein interaction is a challenging problem that has practical applications in the development of therapeutic biomolecules. We used a combination of structure-based computational methods to optimize the binding affinity of an antibody fragment to the I-domain of the integrin VLA1. Despite the already high affinity of the antibody (Kd approximately 7 nM) and the moderate resolution (2.8 A) of the starting crystal structure, the affinity was increased by an order of magnitude primarily through a decrease in the dissociation rate. We determined the crystal structure of a high-affinity quadruple mutant complex at 2.2 A. The structure shows that the design makes the predicted contacts. Structural evidence and mutagenesis experiments that probe a hydrogen bond network illustrate the importance of satisfying hydrogen bonding requirements while seeking higher-affinity mutations. The large and diverse set of interface mutations allowed refinement of the mutant binding affinity prediction protocol and improvement of the single-mutant success rate. Our results indicate that structure-based computational design can be successfully applied to further improve the binding of high-affinity antibodies.

摘要

提高高亲和力蛋白质-蛋白质相互作用的亲和力是一个具有挑战性的问题,在治疗性生物分子的开发中具有实际应用价值。我们结合基于结构的计算方法来优化抗体片段与整联蛋白VLA1的I结构域的结合亲和力。尽管抗体已经具有较高的亲和力(解离常数Kd约为7 nM)且起始晶体结构的分辨率适中(2.8 Å),但亲和力主要通过解离速率的降低提高了一个数量级。我们确定了高亲和力四重突变体复合物在2.2 Å分辨率下的晶体结构。该结构表明设计实现了预测的接触。探测氢键网络的结构证据和诱变实验说明了在寻找更高亲和力突变时满足氢键需求的重要性。大量多样的界面突变使得突变体结合亲和力预测方案得以优化,单突变成功率得以提高。我们的结果表明,基于结构的计算设计可以成功应用于进一步提高高亲和力抗体的结合能力。

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