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DNA-Diffusion: Leveraging Generative Models for Controlling Chromatin Accessibility and Gene Expression via Synthetic Regulatory Elements.
DaSilva, Lucas Ferreira; Senan, Simon; Patel, Zain Munir; Janardhan Reddy, Aniketh; Gabbita, Sameer; Nussbaum, Zach; Valdez Córdova, César Miguel; Wenteler, Aaron; Weber, Noah; Tunjic, Tin M; Ahmad Khan, Talha; Li, Zelun; Smith, Cameron; Bejan, Matei; Karmel Louis, Lithin; Cornejo, Paola; Connell, Will; Wong, Emily S; Meuleman, Wouter; Pinello, Luca.
Afiliação
  • DaSilva LF; Department of Pathology, Harvard Medical School, Boston, MA, USA.
  • Senan S; Molecular Pathology Unit, Center for Cancer Research, Massachusetts General Hospital, Boston, MA, USA.
  • Patel ZM; Molecular Pathology Unit, Center for Cancer Research, Massachusetts General Hospital, Boston, MA, USA.
  • Janardhan Reddy A; Broad Institute of Harvard and MIT, Cambridge, MA, USA.
  • Gabbita S; Department of Pathology, Harvard Medical School, Boston, MA, USA.
  • Nussbaum Z; Molecular Pathology Unit, Center for Cancer Research, Massachusetts General Hospital, Boston, MA, USA.
  • Valdez Córdova CM; Broad Institute of Harvard and MIT, Cambridge, MA, USA.
  • Wenteler A; Department of Electrical Engineering and Computer Sciences, University of California, Berkeley, CA, USA.
  • Weber N; Molecular Pathology Unit, Center for Cancer Research, Massachusetts General Hospital, Boston, MA, USA.
  • Tunjic TM; Johns Hopkins University, Baltimore, MD, USA.
  • Ahmad Khan T; Nomic AI.
  • Li Z; Johannes Kepler University, Linz, Austria.
  • Smith C; Queen Mary University of London, London, UK.
  • Bejan M; TU Vienna, Austria.
  • Karmel Louis L; TU Vienna, Austria.
  • Cornejo P; Independent Researcher.
  • Connell W; Victor Chang Cardiac Institute, Darlinghurst, New South Wales, Australia.
  • Wong ES; School of Biotechnology and Biomolecular Sciences, Faculty of Science, UNSW Sydney, Sydney, Australia.
  • Meuleman W; Department of Pathology, Harvard Medical School, Boston, MA, USA.
  • Pinello L; Molecular Pathology Unit, Center for Cancer Research, Massachusetts General Hospital, Boston, MA, USA.
bioRxiv ; 2024 Feb 01.
Article em En | MEDLINE | ID: mdl-38352499
ABSTRACT
The challenge of systematically modifying and optimizing regulatory elements for precise gene expression control is central to modern genomics and synthetic biology. Advancements in generative AI have paved the way for designing synthetic sequences with the aim of safely and accurately modulating gene expression. We leverage diffusion models to design context-specific DNA regulatory sequences, which hold significant potential toward enabling novel therapeutic applications requiring precise modulation of gene expression. Our framework uses a cell type-specific diffusion model to generate synthetic 200 bp regulatory elements based on chromatin accessibility across different cell types. We evaluate the generated sequences based on key metrics to ensure they retain properties of endogenous sequences transcription factor binding site composition, potential for cell type-specific chromatin accessibility, and capacity for sequences generated by DNA diffusion to activate gene expression in different cell contexts using state-of-the-art prediction models. Our results demonstrate the ability to robustly generate DNA sequences with cell type-specific regulatory potential. DNA-Diffusion paves the way for revolutionizing a regulatory modulation approach to mammalian synthetic biology and precision gene therapy.

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Tipo de estudo: Prognostic_studies Idioma: En Ano de publicação: 2024 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Tipo de estudo: Prognostic_studies Idioma: En Ano de publicação: 2024 Tipo de documento: Article