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Enhancing Safe and Controllable Protein Generation via Knowledge Preference Optimization
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文章提出了一种基于知识图谱的蛋白质语言模型优化框架,通过整合先验知识,降低有害蛋白质序列生成的风险,同时保持高功能性,为生物技术领域提供安全保障。

arXiv:2507.10923v1 Announce Type: new Abstract: Protein language models have emerged as powerful tools for sequence generation, offering substantial advantages in functional optimization and denovo design. However, these models also present significant risks of generating harmful protein sequences, such as those that enhance viral transmissibility or evade immune responses. These concerns underscore critical biosafety and ethical challenges. To address these issues, we propose a Knowledge-guided Preference Optimization (KPO) framework that integrates prior knowledge via a Protein Safety Knowledge Graph. This framework utilizes an efficient graph pruning strategy to identify preferred sequences and employs reinforcement learning to minimize the risk of generating harmful proteins. Experimental results demonstrate that KPO effectively reduces the likelihood of producing hazardous sequences while maintaining high functionality, offering a robust safety assurance framework for applying generative models in biotechnology.

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蛋白质语言模型 知识图谱 安全优化
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