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December 13, 2025Nature Communications2 citationsOpen Access

The non-catalytic DNA polymerase ε subunit is an NPF motif recognition protein

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SKSalla KeskitaloBZBoglárka ZámbóDPDicle Malaymar Pinar

Key Points

  • Investigate the role of POLE2 in recognizing NPF motifs and its implications for replication, DNA repair, and transcription regulation.
  • Utilized quantitative native holdup assay to assess POLE2 binding to NPF-containing peptides
  • Conducted biochemical measurements and mutational analyses to determine interaction sites
  • Performed proteome-scale affinity screens to identify nuclear proteins binding POLE2
  • POLE2 selectively binds diverse NPF-containing peptides, including classical EH-domain ligands
  • Binding analysis reveals specific interactions with Y513, E520, and S522
  • Identified nuclear proteins (e.g., WDHD1, DONSON, TTF2) that associate with POLE2 in a motif-dependent manner

Abstract

Abstract Short linear motifs (SLiMs) in disordered protein regions direct numerous protein–protein interactions, yet most remain uncharacterized. The Asn-Pro-Phe (NPF) motif is a well-known EH-domain ligand implicated in endocytosis, but here we reveal that the non-catalytic subunit of human DNA polymerase ε (POLE2) also serves as a general NPF-motif receptor. Using a quantitative “native holdup” assay, we find that POLE2 selectively binds diverse NPF-containing peptides, including canonical EH-domain ligands (e.g., SYNJ1) and previously uncharacterized motifs. Biochemical measurements and mutational analyses show that NPF motifs interact with a shallow pocket near the POLE2 C-terminus, and AlphaFold predictions confirm key roles for Y513, E520, and S522 in motif coordination. Proteome-scale affinity screens identify NPF-containing nuclear proteins (e.g., WDHD1, DONSON, TTF2) that bind POLE2 with micromolar affinities, and their motif mutations abolish binding in cell extracts. Although POLE2 primarily tethers the catalytic POLE subunit to replication forks, these results indicate that it can also recruit various NPF-bearing partners involved in replication, DNA repair, and transcription regulation. Notably, NPF motifs optimized for EH-domain binding can still associate with POLE2, highlighting the inherent degeneracy of SLiM-mediated networks. Overall, these findings establish POLE2 as a central hub possibly linking replication with other processes via broad NPF-motif recognition.

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Cite This Study

Keskitalo et al. (2025) studied this question.

synapsesocial.com/papers/694018f82d562116f28f5e2chttps://doi.org/10.1038/s41467-025-67284-5
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