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CatIF-RL: Activity-Oriented Enzyme Sequence Design by Steered Inverse Protein Folding
Yanheng Li1, Jialong Xiong1, Yuxin Zhang1
1Key Laboratory of Molecular Medicine and Biotherapy in the Ministry of Industry and Information Technology, Department of Neurobiology, School of Life Sciences, Beijing Institute of Technology, Beijing 100081, China.
This study introduces CatIF-RL, a novel framework for designing enzyme variants with enhanced catalytic activity. The model optimizes protein sequences for higher predicted catalytic efficiency while maintaining structural integrity.
Area of Science:
- Computational Biology
- Protein Engineering
- Enzyme Design
Background:
- Protein inverse folding models generate sequences for given structures but lack functional optimization.
- Enzyme engineering requires designing variants with improved catalytic activity.
Purpose of the Study:
- To develop a framework, CatIF-RL, that steers inverse folding models toward designing enzyme variants with enhanced predicted catalytic activity.
- To enable functional specialization of protein design models.
Main Methods:
- Adapted a graph-based denoising diffusion inverse folding model to enzyme structural data.
- Introduced activity-oriented preference signals using predicted catalytic constant (kcat) as the optimization objective.
- Employed generative dataset curation and group-relative policy optimization (GRPO) for specialization.
Main Results:
- CatIF-RL achieved an approximately 4-fold increase in predicted kcat compared to native enzymes.
- Maintained sequence recovery (0.55) and predicted structural quality comparable to existing methods.
- Demonstrated support for motif-preserving partial sequence design.
Conclusions:
- CatIF-RL provides a practical framework for activity-oriented enzyme design.
- Offers a generalizable strategy for steering structure-conditioned protein generation towards functional optimization.
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