An integrative, multi‐scale, genome‐wide model reveals the phenotypic landscape of Escherichia coli. Issue 6 (June 2014)
- Record Type:
- Journal Article
- Title:
- An integrative, multi‐scale, genome‐wide model reveals the phenotypic landscape of Escherichia coli. Issue 6 (June 2014)
- Main Title:
- An integrative, multi‐scale, genome‐wide model reveals the phenotypic landscape of Escherichia coli
- Authors:
- Carrera, Javier
Estrela, Raissa
Luo, Jing
Rai, Navneet
Tsoukalas, Athanasios
Tagkopoulos, Ilias - Abstract:
- Abstract: Given the vast behavioral repertoire and biological complexity of even the simplest organisms, accurately predicting phenotypes in novel environments and unveiling their biological organization is a challenging endeavor. Here, we present an integrative modeling methodology that unifies under a common framework the various biological processes and their interactions across multiple layers. We trained this methodology on an extensive normalized compendium for the gram‐negative bacterium Escherichia coli, which incorporates gene expression data for genetic and environmental perturbations, transcriptional regulation, signal transduction, and metabolic pathways, as well as growth measurements. Comparison with measured growth and high‐throughput data demonstrates the enhanced ability of the integrative model to predict phenotypic outcomes in various environmental and genetic conditions, even in cases where their underlying functions are under‐represented in the training set. This work paves the way toward integrative techniques that extract knowledge from a variety of biological data to achieve more than the sum of their parts in the context of prediction, analysis, and redesign of biological systems. Synopsis: A data‐driven, integrative modeling methodology is presented that unifies signal transduction, gene expression, and metabolic processes under a common framework. Training on an aggregated dataset results in improved prediction of regulatory connections andAbstract: Given the vast behavioral repertoire and biological complexity of even the simplest organisms, accurately predicting phenotypes in novel environments and unveiling their biological organization is a challenging endeavor. Here, we present an integrative modeling methodology that unifies under a common framework the various biological processes and their interactions across multiple layers. We trained this methodology on an extensive normalized compendium for the gram‐negative bacterium Escherichia coli, which incorporates gene expression data for genetic and environmental perturbations, transcriptional regulation, signal transduction, and metabolic pathways, as well as growth measurements. Comparison with measured growth and high‐throughput data demonstrates the enhanced ability of the integrative model to predict phenotypic outcomes in various environmental and genetic conditions, even in cases where their underlying functions are under‐represented in the training set. This work paves the way toward integrative techniques that extract knowledge from a variety of biological data to achieve more than the sum of their parts in the context of prediction, analysis, and redesign of biological systems. Synopsis: A data‐driven, integrative modeling methodology is presented that unifies signal transduction, gene expression, and metabolic processes under a common framework. Training on an aggregated dataset results in improved prediction of regulatory connections and measured phenotypes. A curated Escherichia coli dataset combining gene expression data for genetic and environmental perturbations, transcriptional regulation, signal transduction metabolic pathways, and growth data is constructed. Gene expression, signal transduction, and metabolic datasets are incorporated into a novel integrative framework for genome‐scaling modeling. Training of the genome‐scale model with the integrated dataset leads to high correlation between predicted and measured phenotypes and reveals new regulatory links. A model enrichment technique identifies under‐represented and highly variable knockouts to drive experimentation. Abstract : A data‐driven, integrative modeling methodology is presented that unifies signal transduction, gene expression, and metabolic processes under a common framework. Training on an aggregated dataset results in improved prediction of regulatory connections and measured phenotypes. … (more)
- Is Part Of:
- Molecular systems biology. Volume 10:Issue 6(2014)
- Journal:
- Molecular systems biology
- Issue:
- Volume 10:Issue 6(2014)
- Issue Display:
- Volume 10, Issue 6 (2014)
- Year:
- 2014
- Volume:
- 10
- Issue:
- 6
- Issue Sort Value:
- 2014-0010-0006-0000
- Page Start:
- n/a
- Page End:
- n/a
- Publication Date:
- 2014-06
- Subjects:
- genome engineering -- genome‐scale model -- model‐driven experimentation -- predictive modeling and integration -- systems and synthetic biology
Molecular biology -- Periodicals
Systems biology -- Periodicals
572.8 - Journal URLs:
- http://onlinelibrary.wiley.com/journal/10.1002/(ISSN)1744-4292 ↗
http://www.nature.com/msb/index.html ↗
http://onlinelibrary.wiley.com/ ↗ - DOI:
- 10.15252/msb.20145108 ↗
- Languages:
- English
- ISSNs:
- 1744-4292
- Deposit Type:
- Legaldeposit
- View Content:
- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - 5900.856300
British Library DSC - BLDSS-3PM
British Library HMNTS - ELD Digital store - Ingest File:
- 11444.xml