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Rationalization and Design of the Complementarity Determining Region Sequences in an Antibody-Antigen Recognition Interface

Overview of attention for article published in PLOS ONE, March 2012
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Title
Rationalization and Design of the Complementarity Determining Region Sequences in an Antibody-Antigen Recognition Interface
Published in
PLOS ONE, March 2012
DOI 10.1371/journal.pone.0033340
Pubmed ID
Authors

Chung-Ming Yu, Hung-Pin Peng, Ing-Chien Chen, Yu-Ching Lee, Jun-Bo Chen, Keng-Chang Tsai, Ching-Tai Chen, Jeng-Yih Chang, Ei-Wen Yang, Po-Chiang Hsu, Jhih-Wei Jian, Hung-Ju Hsu, Hung-Ju Chang, Wen-Lian Hsu, Kai-Fa Huang, Alex Che, An-Suei Yang

Abstract

Protein-protein interactions are critical determinants in biological systems. Engineered proteins binding to specific areas on protein surfaces could lead to therapeutics or diagnostics for treating diseases in humans. But designing epitope-specific protein-protein interactions with computational atomistic interaction free energy remains a difficult challenge. Here we show that, with the antibody-VEGF (vascular endothelial growth factor) interaction as a model system, the experimentally observed amino acid preferences in the antibody-antigen interface can be rationalized with 3-dimensional distributions of interacting atoms derived from the database of protein structures. Machine learning models established on the rationalization can be generalized to design amino acid preferences in antibody-antigen interfaces, for which the experimental validations are tractable with current high throughput synthetic antibody display technologies. Leave-one-out cross validation on the benchmark system yielded the accuracy, precision, recall (sensitivity) and specificity of the overall binary predictions to be 0.69, 0.45, 0.63, and 0.71 respectively, and the overall Matthews correlation coefficient of the 20 amino acid types in the 24 interface CDR positions was 0.312. The structure-based computational antibody design methodology was further tested with other antibodies binding to VEGF. The results indicate that the methodology could provide alternatives to the current antibody technologies based on animal immune systems in engineering therapeutic and diagnostic antibodies against predetermined antigen epitopes.

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Geographical breakdown

Country Count As %
United Kingdom 3 4%
Japan 1 1%
United States 1 1%
Unknown 70 93%

Demographic breakdown

Readers by professional status Count As %
Student > Ph. D. Student 21 28%
Researcher 16 21%
Student > Master 10 13%
Student > Bachelor 7 9%
Student > Doctoral Student 4 5%
Other 13 17%
Unknown 4 5%
Readers by discipline Count As %
Agricultural and Biological Sciences 32 43%
Biochemistry, Genetics and Molecular Biology 10 13%
Chemistry 5 7%
Chemical Engineering 4 5%
Medicine and Dentistry 4 5%
Other 13 17%
Unknown 7 9%