4.8 Article

A Whole-Cell Computational Model Predicts Phenotype from Genotype

Journal

CELL
Volume 150, Issue 2, Pages 389-401

Publisher

CELL PRESS
DOI: 10.1016/j.cell.2012.05.044

Keywords

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Funding

  1. NIH [1DP1OD006413]
  2. Hellman Faculty Scholarship
  3. NSF
  4. Bio-X Graduate Student Fellowships
  5. NDSEG
  6. Stanford Graduate Student Fellowships
  7. Benchmark Stanford Graduate Fellowship
  8. U.S. Department of Energy [DE-FC02-02ER63453]

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Understanding how complex phenotypes arise from individual molecules and their interactions is a primary challenge in biology that computational approaches are poised to tackle. We report a whole-cell computational model of the life cycle of the human pathogen Mycoplasma genitalium that includes all of its molecular components and their interactions. An integrative approach to modeling that combines diverse mathematics enabled the simultaneous inclusion of fundamentally different cellular processes and experimental measurements. Our whole-cell model accounts for all annotated gene functions and was validated against a broad range of data. The model provides insights into many previously unobserved cellular behaviors, including in vivo rates of protein-DNA association and an inverse relationship between the durations of DNA replication initiation and replication. In addition, experimental analysis directed by model predictions identified previously undetected kinetic parameters and biological functions. We conclude that comprehensive whole-cell models can be used to facilitate biological discovery.

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