Abstract
Despite the high specificity between antigen and antibody binding, similar epitopes can be recognized or cross-neutralized by paratopes of antibody with different binding affinities. How to accurately characterize this slight variation which may or may not change the antigen-antibody binding affinity is a key issue in this area. In this report, by combining cylinder model with shell structure model, a new fingerprint was introduced to describe both the structural and physical-chemical features of the antigen and antibody protein. Furthermore, beside the description of individual protein, the specific epitope-paratope interaction fingerprint (EPIF) was developed to reflect the bond and the environment of the antigen-antibody interface. Finally, Proteochemometric Modeling of the antigen-antibody interaction was established and evaluated on 429 antigen-antibody complexes. By using only protein , our model achieved the best performance (R2 = 0:91; Q2test = 0:68) among peers. Further, together with EPIF as a new cross-term, our model (R2 = 0:92; Q2test = 0:74) can significantly outperform peers with multiplication of ligand and protein as a crossterm (R2 ≤ 0:81; Q2test ≤ 0:44). Results illustrated that: 1) our newly designed protein fingerprints and EPIF can better describe the antigen-antibody interaction; 2) EPIF is a better and specific cross-term in Proteochemometric Modeling for antigen-antibody interaction. The fingerprints designed in this study will provide assistance to the description of antigen-antibody binding, and in future, it may be valuable help for the high-throughput antibody screening. The algorithm is freely available on request.
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CITATION STYLE
Qiu, T., Xiao, H., Zhang, Q., Qiu, J., Yang, Y., Wu, D., … Zhu, R. (2015). Proteochemometric modeling of the antigen-antibody interaction: New fingerprints for antigen, antibody and epitope-paratope interaction. PLoS ONE, 10(4). https://doi.org/10.1371/journal.pone.0122416
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