Highly accurate protein structure prediction with AlphaFold
Высокоточное предсказание структуры белков с помощью AlphaFold
2021-07-15
SCID: 54.1/pta26hvm
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AlphaFolddeep learningmultiple sequence alignmentsprotein folding problemprotein structure prediction
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Abstract (AI)
Abstract Proteins are essential to life, and understanding their structure can facilitate a mechanistic understanding of their function. Through an enormous experimental effort 1–4 , the structures of around 100,000 unique proteins have been determined 5 , but this represents a small fraction of the billions of known protein sequences 6,7 . Structural coverage is bottlenecked by the months to years of painstaking effort required to determine a single protein structure. Accurate computational approaches are needed to address this gap and to enable large-scale structural bioinformatics. Predicting the three-dimensional structure that a protein will adopt based solely on its amino acid sequence—the structure prediction component of the ‘protein folding problem’ 8 —has been an important open research problem for more than 50 years 9 . Despite recent progress 10–14 , existing methods fall far short of atomic accuracy, especially when no homologous structure is available. Here we provide the first computational method that can regularly predict protein structures with atomic accuracy even in cases in which no similar structure is known. We validated an entirely redesigned version of our neural network-based model, AlphaFold, in the challenging 14th Critical Assessment of protein Structure Prediction (CASP14) 15 , demonstrating accuracy competitive with experimental structures in a majority of cases and greatly outperforming other methods. Underpinning the latest version of AlphaFold is a novel machine learning approach that incorporates physical and biological knowledge about protein structure, leveraging multi-sequence alignments, into the design of the deep learning algorithm.
Key Findings
1
AlphaFold addresses the limited structural coverage caused by the slow, labor-intensive determination of experimental protein structures.
2
AlphaFold greatly outperformed other protein-structure prediction methods in the challenging CASP14 evaluation.
3
AlphaFold is the first computational method reported to regularly predict protein structures with atomic accuracy, including when no similar structure is known.
4
In the CASP14 assessment, AlphaFold achieved accuracy competitive with experimental structures in a majority of cases.
5
The redesigned neural network incorporates physical and biological knowledge of protein structure and leverages multi-sequence alignments.
Research Object
Protein three-dimensional structure prediction from amino-acid sequence using AlphaFold
Research Subject
the accuracy of protein structure prediction, particularly atomic-level accuracy without homologous structures
Publication Details
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2021-07-15
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