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Computationally Evidence-Grounded Sequence-First Design of Peptide Binders
Wenze Ding1,2,3
1School of Life and Environmental Sciences, University of Sydney, New South Wales, Australia.
Advanced Science (Weinheim, Baden-Wurttemberg, Germany)
|August 14, 2026
Summary
We developed BOND-PEP, a novel framework for designing peptide binders using only protein sequences. This method enhances target specificity and control, outperforming existing sequence-based approaches in computational evaluations.
Area of Science:
- Computational biology
- Protein engineering
- Drug discovery
Background:
- Peptide binders are crucial for targeting proteins intractable to small molecules.
- Current peptide discovery methods are limited by screening intensity or template dependence.
- Sequence-based generation offers scalability but often lacks target specificity and struggles with protein language model transfer.
Purpose of the Study:
- To introduce BOND-PEP, a sequence-only framework for generating peptide binders with enhanced target specificity.
- To address limitations of existing sequence-based peptide design methods.
- To enable controllable peptide binder generation without structural templates.
Main Methods:
- BOND-PEP employs retrieval of target-relevant peptide exemplars.
- It utilizes bipartite message passing for protein-peptide alignment.
- A protein-centric representation guides conditional decoding for binder generation.
Main Results:
- BOND-PEP demonstrated superior performance over RFdiffusion, PepPrCLIP, and PepMLM in AlphaFold-Multimer evaluations.
- The framework achieved improved reference-beating ipTM success on a held-out benchmark.
- Successful transfer to external targets with experimentally validated binders was observed.
Conclusions:
- BOND-PEP represents an evidence-grounded framework for sequence-only peptide binder generation.
- Retrieval-augmented, topology-conditioned decoding is a viable strategy for controllable peptide design.
- This approach offers a scalable and effective alternative for discovering peptide binders.
Keywords:
peptide designprotein‐peptide interactionsretrieval‐augmented generationsequence‐first generationtopology‐conditioned decodingMore Related Videos
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