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Addressing uncertainty in genome-scale metabolic model reconstruction and analysis.


ABSTRACT: The reconstruction and analysis of genome-scale metabolic models constitutes a powerful systems biology approach, with applications ranging from basic understanding of genotype-phenotype mapping to solving biomedical and environmental problems. However, the biological insight obtained from these models is limited by multiple heterogeneous sources of uncertainty, which are often difficult to quantify. Here we review the major sources of uncertainty and survey existing approaches developed for representing and addressing them. A unified formal characterization of these uncertainties through probabilistic approaches and ensemble modeling will facilitate convergence towards consistent reconstruction pipelines, improved data integration algorithms, and more accurate assessment of predictive capacity.

SUBMITTER: Bernstein DB 

PROVIDER: S-EPMC7890832 | biostudies-literature | 2021 Feb

REPOSITORIES: biostudies-literature

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Addressing uncertainty in genome-scale metabolic model reconstruction and analysis.

Bernstein David B DB   Sulheim Snorre S   Almaas Eivind E   Segrè Daniel D  

Genome biology 20210218 1


The reconstruction and analysis of genome-scale metabolic models constitutes a powerful systems biology approach, with applications ranging from basic understanding of genotype-phenotype mapping to solving biomedical and environmental problems. However, the biological insight obtained from these models is limited by multiple heterogeneous sources of uncertainty, which are often difficult to quantify. Here we review the major sources of uncertainty and survey existing approaches developed for rep  ...[more]

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