Project Grant 2226466

Award Date 9/1/22
Completion Date 8/31/25
Dollars Obligated $1.2M
Federal Grant Program
47.049
Assistance Type
Project Grant
Place of Performance
Seattle, WA 98195, USA

This three-year $1,198,460 Project Grant from the National Science Foundation's (NSF) Mathematical and Physical Sciences program (CFDA 47.049) supports the development of deep learning models for protein-DNA complex structure prediction, design, and evaluation. Professors David Baker and Frank DiMaio of the University of Washington Department of Biochemistry, along with Barry Stoddard of the Fred Hutchinson Cancer Center, will create three deep learning models: one for predicting protein-DNA complex structures from sequence, one for designing protein-DNA complex sequences, and one for assessing predicted complex structure quality. These models will be applied to design DNA-binding mini-proteins targeting specific DNA sequences. Two subawards totaling $100,000 support related collaborative research projects between the University of Washington and the University of California, Los Angeles, and the Fred Hutchinson Cancer Center, to validate model accuracy and design novel biomolecules like transcription factors. The grant provides multi-disciplinary training and aims to attract students to STEM careers.

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