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Updated: May 27, 2025

Exploring Sequence Space to Identify Binding Sites for Regulatory RNA-Binding Proteins
Published on: August 9, 2019
Refining sequence-to-activity models by increasing model resolution.
Nuria Alina Chandra1, Yan Hu2,3, Jason D Buenrostro2,3
1Paul G. Allen School of Computer Science and Engineering, University of Washington, Seattle 98195, WA, USA.
We developed bpAI-TAC, a new model that uses base-pair resolution ATAC-seq profiles to improve predictions of chromatin accessibility and regulatory element function in immune cells.
Area of Science:
- Genomics
- Computational Biology
- Immunology
Background:
- Chromatin accessibility, measured by ATAC-seq, reveals gene regulatory regions.
- Sequence-to-function (S2F) models link genomic sequences to chromatin states.
- Previous AI-TAC model predicted immune cell chromatin accessibility but missed ATAC-seq profile details.
Purpose of the Study:
- To develop a novel model, bpAI-TAC, that incorporates base-pair resolution ATAC-seq profiles.
- To enhance predictions of differential chromatin accessibility and regulatory element function.
- To investigate the impact of ATAC-profile information on model learning and motif identification.
Main Methods:
- Developed bpAI-TAC, a multi-task neural network modeling ATAC-seq at base-pair resolution.
- Applied the model across 90 immune cell types.
- Utilized sequence attributions to analyze learned motifs and their effect sizes.
Main Results:
- Incorporating ATAC-profile information consistently improved differential chromatin accessibility predictions.
- Multi-task learning on related cell types outperformed single-task models.
- bpAI-TAC identified motifs with differential effect sizes when trained on profiles, revealing regulatory syntax.
Conclusions:
- Modeling ATAC-seq at base-pair resolution provides a more sensitive representation of regulatory syntax in immune cells.
- bpAI-TAC enhances understanding of regulatory mechanisms driving cell type differences.
- This approach improves predictions of variant effects on chromatin accessibility.
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