Peptriever: a Bi-Encoder approach for large-scale protein–peptide binding search

Author:

Gurvich Roni1ORCID,Markel Gal123,Tanoli Ziaurrehman4,Meirson Tomer123ORCID

Affiliation:

1. Davidoff Cancer Center, Rabin Medical Center-Beilinson Hospital , Petah Tikva 49100, Israel

2. Faculty of Medicine, Tel Aviv University , Tel-Aviv 6997801, Israel

3. Samueli Integrative Cancer Pioneering Institute, Rabin Medical Center-Beilinson Hospital , Petah Tikva, Israel

4. Institute for Molecular Medicine Finland (FIMM), HiLIFE, University of Helsinki , Helsinki 00290, Finland

Abstract

Abstract Motivation Peptide therapeutics hinge on the precise interaction between a tailored peptide and its designated receptor while mitigating interactions with alternate receptors is equally indispensable. Existing methods primarily estimate the binding score between protein and peptide pairs. However, for a specific peptide without a corresponding protein, it is challenging to identify the proteins it could bind due to the sheer number of potential candidates. Results We propose a transformers-based protein embedding scheme in this study that can quickly identify and rank millions of interacting proteins. Furthermore, the proposed approach outperforms existing sequence- and structure-based methods, with a mean AUC-ROC and AUC-PR of 0.73. Availability and implementation Training data, scripts, and fine-tuned parameters are available at https://github.com/RoniGurvich/Peptriever. The proposed method is linked with a web application available for customized prediction at https://peptriever.app/.

Funder

Integrative Immuno-Oncology

Publisher

Oxford University Press (OUP)

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