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AlphaGenome: advancing regulatory variant effect prediction with a unified DNA sequence model

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Research Abstract & Technology Focus

Deep learning models that predict functional genomic measurements from DNA sequence are powerful tools for deciphering the genetic regulatory code. Existing methods trade off between input sequence length and prediction resolution, thereby limiting their modality scope and performance. We present AlphaGenome, which takes as input 1 megabase of DNA sequence and predicts thousands of functional genomic tracks up to single base pair resolution across diverse modalities – including gene expression, transcription initiation, chromatin accessibility, histone modifications, transcription factor binding, chro- matin contact maps, splice site usage, and splice junction coordinates and strength. Trained on human and mouse genomes, AlphaGenome matches or exceeds the strongest respective available external models on 24 out of 26 evaluations on variant effect prediction. AlphaGenome’s ability to simultaneously score variant effects across all modalities accurately recapitulates the mechanisms of clinically-relevant variants near the
TAL1
oncogene. To facilitate broader use, we provide tools for making genome track and variant effect predictions from sequence.
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This literature focuses on: Deep learning models that predict functional genomic measurements from DNA sequence are powerful tools for deciphering the genetic regulatory code. Existing methods trade off between input sequence length and prediction resolution, thereby limitin...

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Yes, highly correlated activity was mapped. An entry titled 'AlphaGenome: advancing regulatory variant effect prediction with a unified DNA sequence model' discusses this: Deep learning models that predict functional genomic measurements from DNA sequence are powerful tools for deciphering the genetic regulatory code....

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Yes, highly correlated activity was mapped. An entry titled 'AlphaFold hits ‘next level’: the AI tool now includes protein pairing' discusses this: The database of 200 million protein-structure predictions now includes homodimers, adding new biological relevance.

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