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AlphaFold

Prevê a estrutura tridimensional de proteínas a partir da sequência de aminoácidos

Google DeepMind Modelo Código aberto

O texto completo é apresentado em inglês; o título e o resumo estão traduzidos.

O QUE É

AlphaFold is Google DeepMind’s protein-structure prediction system; the second version (AlphaFold2) was announced at the CASP14 assessment in November 2020 with accuracy close to experimental methods. It takes a protein’s amino-acid sequence and a multiple sequence alignment as input, uses an attention-based Evoformer module to model relationships between residues, and outputs three-dimensional coordinates. DeepMind later open-sourced the code and model weights and, with EMBL-EBI, built the AlphaFold Protein Structure Database, which holds hundreds of millions of predicted structures.

Por que vale a pena lembrar

It pushed protein-structure prediction to near-experimental accuracy, released the code and weights, and built a large structure database, becoming one of the most cited cases of AI applied to scientific research.

Especificações-chave

Open source
Yes (code and model weights released)
Database scale
AlphaFold DB holds hundreds of millions of predicted structures
Input
Amino-acid sequence and multiple sequence alignment
Released
2020-11 (CASP14)

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