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Modeling Boltzmann-weighted structural ensembles of proteins using artificial intelligence-based methods

delete2025-04-01
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OA
AI
A
Akashnathan Aranganathan
X
Xinyu Gu
D
Dedi Wang
B
Bodhi P. Vani
P
Pratyush Tiwary *
DOI:10.1016/j.sbi.2025.103000delete
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Abstract

Abstract

En 中文
This review highlights recent advances in AI-driven methods for generating Boltzmann-weighted structural ensembles, which are crucial for understanding biomolecular dynamics and drug discovery. With the rise of deep learning models such as AlphaFold2, there has been a shift toward more accurate and efficient sampling of structural ensembles. The review discusses the integration of AI with traditional molecular dynamics techniques as well as experiments, the challenges of conformational sampling, and future directions for AI-driven research in structural biology, particularly in drug discovery and protein dynamics.
Keywords:
MOLECULAR-DYNAMICS
NEURAL-NETWORK
PREDICTION
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Journal

Current Opinion in Structural Biology cover
Current Opinion in Structural Biology
IF:
7
Papers:
3.8K
Citations:
1.3W

Organization

University System of Maryland cover
University System of Maryland
Scholars:
6.4W
Papers: 5.6W
Citations: 113