cs.AI updates on arXiv.org 07月10日 12:05
PLAME: Leveraging Pretrained Language Models to Generate Enhanced Protein Multiple Sequence Alignments
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本文介绍了一种新型蛋白质结构预测模型PLAME,通过利用预训练蛋白语言模型的进化嵌入和改进的MSA设计,显著提升了低同源和孤儿蛋白的预测性能。

arXiv:2507.07032v1 Announce Type: cross Abstract: Protein structure prediction is essential for drug discovery and understanding biological functions. While recent advancements like AlphaFold have achieved remarkable accuracy, most folding models rely heavily on multiple sequence alignments (MSAs) to boost prediction performance. This dependency limits their effectiveness on low-homology proteins and orphan proteins, where MSA information is sparse or unavailable. To address this limitation, we propose PLAME, a novel MSA design model that leverages evolutionary embeddings from pretrained protein language models. Unlike existing methods, PLAME introduces pretrained representations to enhance evolutionary information and employs a conservation-diversity loss to enhance generation quality. Additionally, we propose a novel MSA selection method to effectively screen high-quality MSAs and improve folding performance. We also propose a sequence quality assessment metric that provides an orthogonal perspective to evaluate MSA quality. On the AlphaFold2 benchmark of low-homology and orphan proteins, PLAME achieves state-of-the-art performance in folding enhancement and sequence quality assessment, with consistent improvements demonstrated on AlphaFold3. Ablation studies validate the effectiveness of the MSA selection method, while extensive case studies on various protein types provide insights into the relationship between AlphaFold's prediction quality and MSA characteristics. Furthermore, we demonstrate that PLAME can serve as an adapter achieving AlphaFold2-level accuracy with the ESMFold's inference speed.

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蛋白质结构预测 PLAME模型 MSA设计
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