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February 21, 2026Current Opinion in Structural Biology0 citationsOpen Access

Protein dynamics prediction by integrating biophysics and artificial intelligence

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HHHengyan HuangXGXingyue GuanWLWenfei Li

Key Points

  • The aim is to enhance the understanding and prediction of protein dynamics through the integration of biophysics and AI.
  • Reviewed recent advances in combining biophysical constraints and AI methods.
  • Examined fundamental biophysical principles and data.
  • Discussed physics-based methodologies within AI models.
  • Integrated approaches improve predictions of protein dynamics.
  • Enhancements in performance and interpretability of AI models are reported.
  • Future directions and perspectives for therapeutic discoveries are outlined.

Abstract

Proteins often rely on conformational dynamics to perform their biological functions. A detailed understanding of protein dynamics is fundamental to revealing the biophysical principles of life and to accelerating therapeutic discovery. However, purely data-driven artificial intelligence (AI) methods face significant challenges in capturing the full spectrum of protein conformational dynamics. This review highlights recent advances in overcoming these challenges through the integration of biophysical constraints with AI-driven approaches. By combining fundamental biophysical principles, experimentally measured biophysical data, and physics-based methodologies into AI models, the integrated approaches show promise in enhancing both the performance and interpretability of protein dynamics predictions. Several key perspectives and future directions in the field are also discussed.

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Cite This Study

Huang et al. (2026) studied this question.

synapsesocial.com/papers/69994ad4873532290d01f3dahttps://doi.org/10.1016/j.sbi.2026.103223
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