Large-Scale Evaluation ofIn SilicoGene Deletions inSaccharomyces cerevisiae
- 1 July 2003
- journal article
- research article
- Published by Mary Ann Liebert Inc in OMICS: A Journal of Integrative Biology
- Vol. 7 (2) , 193-202
- https://doi.org/10.1089/153623103322246584
Abstract
A large-scale in silico evaluation of gene deletions in Saccharomyces cerevisiae was conducted using a genome-scale reconstructed metabolic model. The effect of 599 single gene deletions on cell viability was simulated in silico and compared to published experimental results. In 526 cases (87.8%), the in silico results were in agreement with experimental observations when growth on synthetic complete medium was simulated. Viable phenotypes were correctly predicted in 89.4% (496 out of 555) and lethal phenotypes were correctly predicted in 68.2% (30 out of 44) of the cases considered. The in silico evaluation was solely based on the topological properties of the metabolic network which is based on well-established reaction stoichiometry. No interaction or regulatory information was accounted for in the in silico model. False predictions were analyzed on a case-by-case basis for four possible inadequacies of the in silico model: (1) incomplete media composition, (2) substitutable biomass components, (3) incomplete biochemical information, and (4) missing regulation. This analysis eliminated a number of false predictions and suggested a number of experimentally testable hypotheses. A genome-scale in silico model can thus be used to systematically reconcile existing data and fill in our knowledge gaps about an organism.Keywords
This publication has 45 references indexed in Scilit:
- An expanded role for microbial physiology in metabolic engineering and functional genomics: moving towards systems biologyFEMS Yeast Research, 2002
- Characterization of null mutants of the glyoxylate cycle and gluconeogenic enzymes inS. cerevisiaethrough metabolic network modeling verified by chemostat cultivationBiotechnology & Bioengineering, 2001
- A NEWAPPROACH TODECODINGLIFE: Systems BiologyAnnual Review of Genomics and Human Genetics, 2001
- Saccharomyces cerevisiae Is Capable of de Novo Pantothenic Acid Biosynthesis Involving a Novel Pathway of β-Alanine Production from SpermineJournal of Biological Chemistry, 2001
- Phosphate permeases of Saccharomyces cerevisiae: structure, function and regulationBiochimica et Biophysica Acta (BBA) - Reviews on Biomembranes, 1999
- The yeast inositol monophosphatase is a lithium‐ and sodium‐sensitive enzyme encoded by a non‐essential gene pairMolecular Microbiology, 1999
- Use of Sterol Mutants as Probes for Sterol Functions in the Yeast,Saccharomyces cerevisiaeCritical Reviews in Biochemistry and Molecular Biology, 1999
- E-CELL: software environment for whole-cell simulation.Bioinformatics, 1999
- SGD: Saccharomyces Genome DatabaseNucleic Acids Research, 1998
- Metabolic dynamics in the human red cellJournal of Theoretical Biology, 1989