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September 27, 2025Science71 citations

Predicting protein-protein interactions in the human proteome

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JZJing ZhangIHIan R. HumphreysJPJimin Pei

Key Points

  • 17,849 protein-protein interactions were predicted with an expected precision of 90%.
  • The approach enhanced coevolutionary signals using 7-fold deeper multiple sequence alignments and 30 petabytes of data.
  • A new deep learning network was developed using augmented datasets from 200 million predicted protein structures.
  • 3,631 interactions were newly identified, providing new hypotheses about protein functions and human diseases.

Abstract

Protein-protein interactions (PPI) are essential for biological function. Coevolutionary analysis and deep learning (DL) based protein structure prediction have enabled comprehensive PPI identification in bacteria and yeast, but these approaches have had limited success for the more complex human proteome. We overcame this challenge by enhancing the coevolutionary signals with 7-fold deeper multiple sequence alignments harvested from 30 petabytes of unassembled genomic data and developing a new DL network trained on augmented datasets of domain-domain interactions from 200 million predicted protein structures. We systematically screened 200 million human protein pairs and predicted 17,849 interactions with an expected precision of 90%, of which 3,631 interactions were not identified in previous experimental screens. Three-dimensional models of these predicted interactions provide numerous hypotheses about protein function and mechanisms of human diseases.

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Cite This Study

Zhang et al. (2025) studied this question.

synapsesocial.com/papers/68d7b3d4eebfec0fc52364a6https://doi.org/10.1126/science.adt1630
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