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PackPPI: An integrated framework for protein-protein complex side-chain packing and ΔΔG prediction based on diffusion
Jingkai Zhang1, Yuanyan Xiong1
1State Key Laboratory of Biocontrol, School of Life Sciences, Sun Yat-sen University, Guangzhou, China.
Protein Science : a Publication of the Protein Society
|April 22, 2025
Summary
PackPPI integrates deep learning for protein side-chain prediction and mutation effect estimation. This framework improves conformational accuracy and predicts binding affinity changes, advancing protein design.
Area of Science:
- Computational Biology
- Structural Bioinformatics
- Protein Engineering
Background:
- Deep learning advances protein side-chain packing and mutation effect prediction (ΔΔG).
- These related tasks are often handled separately, limiting integrated solutions.
- Existing methods lack effective post-processing, hindering conformational refinement.
Purpose of the Study:
- Introduce PackPPI, an integrated framework for protein complex analysis.
- Improve side-chain prediction accuracy and ΔΔG prediction using learned representations.
- Enhance conformational plausibility through effective post-processing.
Main Methods:
- Utilizes a diffusion model for generating protein conformations.
- Employs a proximal optimization algorithm for refining side-chain packing.
- Integrates learned representations for predicting mutation-induced binding affinity changes (ΔΔG).
Main Results:
- Achieved lowest atom RMSD (0.9822) on the CASP15 dataset for side-chain prediction.
- Proximal optimization effectively reduced spatial clashes while maintaining a low-energy landscape.
- Demonstrated state-of-the-art performance in predicting binding affinity changes on SKEMPI v2.0.
Conclusions:
- PackPPI offers a robust and versatile computational tool for protein design and engineering.
- The integrated approach enhances accuracy in both conformational prediction and ΔΔG estimation.
- The framework shows significant potential for advancing molecular modeling and drug discovery.
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