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Improving Protein-peptide Interface Predictions in the Low Data Regime

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arxiv 2306.00557 v1 pith:76SQDF43 submitted 2023-05-31 q-bio.BM cs.LG

classification q-bio.BMcs.LG
keywords datainteractionsprotein-peptideactsarchitecturebi-modalcomplexesinter-facial
verification ladder T0 review T1 audit T2 compute T3 formal
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We propose a novel approach for predicting protein-peptide interactions using a bi-modal transformer architecture that learns an inter-facial joint distribution of residual contacts. The current data sets for crystallized protein-peptide complexes are limited, making it difficult to accurately predict interactions between proteins and peptides. To address this issue, we propose augmenting the existing data from PepBDB with pseudo protein-peptide complexes derived from the PDB. The augmented data set acts as a method to transfer physics-based contextdependent intra-residue (within a domain) interactions to the inter-residual (between) domains. We show that the distributions of inter-facial residue-residue interactions share overlap with inter residue-residue interactions, enough to increase predictive power of our bi-modal transformer architecture. In addition, this dataaugmentation allows us to leverage the vast amount of protein-only data available in the PDB to train neural networks, in contrast to template-based modeling that acts as a prior

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