Wang Shuang, Liu Ming, Zeng Dadi, Qiu Weiyi, Ma Pingping, Yu Yunzhou, Chang Hongyan, Sun Zhiwei
Laboratory of Protein Engineering, Beijing Institute of Biotechnology, Beijing, China.
Proteins. 2014 Oct;82(10):2620-30. doi: 10.1002/prot.24626. Epub 2014 Jul 5.
Antibody stability is very important for expression, activity, specificity, and storage. This knowledge of antibody structure has made it possible for a computer-aided molecule design to be used to optimize and increase antibody stability. Many computational methods have been built based on knowledge or structure, however, a good integrated engineering system has yet to be developed that combines these methods. In the current study, we designed an integrated computer-aided engineering protocol, which included several successful methods. Mutants were designed considering factors that affected stability and multiwall filter screening was used to improve the design accuracy. Using this protocol, the thermo-stability of an anti-hVEGF antibody was significantly improved. Nearly 40% of the single-point mutants proved to be more stable than the parent antibody and most of the mutations could be stacked effectively. The T₅₀ also improved about 7°C by combinational mutation of seven sites in the light chain and three sites in the heavy chain. Data indicate that the protocol is an effective method for optimization of antibody structure, especially for improving thermo-stability. This protocol could also be used to enhance the stability of other antibodies.
抗体稳定性对于表达、活性、特异性和储存非常重要。对抗体结构的了解使得利用计算机辅助分子设计来优化和提高抗体稳定性成为可能。基于知识或结构已经建立了许多计算方法,然而,尚未开发出一个结合这些方法的良好的集成工程系统。在本研究中,我们设计了一个集成的计算机辅助工程方案,其中包括几种成功的方法。设计突变体时考虑了影响稳定性的因素,并使用多壁滤器筛选来提高设计准确性。使用该方案,抗人血管内皮生长因子(hVEGF)抗体的热稳定性得到显著提高。近40%的单点突变体被证明比亲本抗体更稳定,并且大多数突变可以有效叠加。通过轻链中的七个位点和重链中的三个位点的组合突变,T₅₀也提高了约7°C。数据表明该方案是优化抗体结构的有效方法,尤其是用于提高热稳定性。该方案也可用于增强其他抗体的稳定性。