| Literature DB >> 22912775 |
Carlos Eduardo García Sánchez1, César Augusto Vargas García, Rodrigo Gonzalo Torres Sáez.
Abstract
BACKGROUND: The main objective of flux balance analysis (FBA) is to obtain quantitative predictions of metabolic fluxes of an organism, and it is necessary to use an appropriate objective function to guarantee a good estimation of those fluxes.Entities:
Mesh:
Year: 2012 PMID: 22912775 PMCID: PMC3415429 DOI: 10.1371/journal.pone.0043006
Source DB: PubMed Journal: PLoS One ISSN: 1932-6203 Impact factor: 3.240
Experimental data used in this study. Characteristics, quantity and source of the experimental data used for the numerical evaluation of the performance of the FBA predictions, using combinations of cellular objectives as objective function.
| Substrate | Culture conditions | Exchange fluxes measured or adapted | Amount of experimental data | Reference |
| Glucose | Continuous culture, respiro-fermentative | Ethanol, glycerol, acetate, succinate, acetaldehyde, pyruvate | 1 |
|
| Glucose | Continuous culture, anaerobic | Ethanol, glycerol, acetate, succinate, pyruvate, carbon dioxide | 4 |
|
| Glucose | Continuous culture, aerobic | Ethanol, glycerol, acetate, succinate, pyruvate | 1 |
|
| Glucose, maltose, ethanol, acetate | Continuous culture, aerobic | Oxygen, carbon dioxide | 4 |
|
| Glucose | Continuous culture, aerobic and respiro-fermentative | Ethanol, glycerol, acetate, carbon dioxide | 3 |
|
| Glucose plus ethanol | Continuous culture, aerobic | Oxygen, carbon dioxide | 1 |
|
| Galactose | Continuous culture, aerobic | Ethanol, glycerol, acetate, pyruvate, carbon dioxide | 1 |
|
| Glucose | Continuous culture, respiro-fermentative and anaerobic | Ethanol, glycerol, acetate, oxygen | 8 |
|
| Glucose | Continuous culture, respiro-fermentative and anaerobic | Ethanol, glycerol, acetate, oxygen | 4 |
|
| Glucose | Exponential growth in batch culture, respiro-fermentative | Ethanol, glycerol, acetate, carbon dioxide | 8 |
|
| Glucose | Continuous culture, aerobic | Ethanol, glycerol, acetate, pyruvate, oxygen, carbon dioxide | 10 |
|
Compartmental objectives considered in the study. List of the possible compartmental objectives evaluated in this study. All the combinations of these objectives create the objective functions whose predictive potential was evaluated.
| Global | Cytosol | Mitochondria | Peroxisome |
| max (biomass production) | max (NAD(P)H production) | max (ATP production) | max (fatty acids production) |
| min (biomass production) | max (NAD(P)H consumption) | max (NAD(P)H production) | max (ATP consumption) |
| min (NADH production) | min (NAD(P)H consumption) | min (ATP consumption) | |
| min (NAD(P)H consumption) | max (transport of ATP towards cytosol) | max (NAD(P)H production) | |
| min (NAD(P)H production) | min (NAD(P)H consumption) | ||
| max (ATP production) | |||
| min (ATP consumption) | |||
| min (acetate production) | |||
| min (CO2 production) | |||
| min (ethanol production) | |||
| min (succinate production) | |||
| min (glycerol production) | |||
| max (acetate production) | |||
| max (CO2 production) | |||
| max (ethanol production) | |||
| max (succinate production) | |||
| max (glycerol production) |
Figure 1Best objective functions for FBA, regarding presence of oxygen in the medium.
Errors of the FBA estimations using the five best compartmentalized objective functions (for every category), and “max biomass production” and “max ATP production” functions. The compartmental objectives that correspond to minimizations have negative sign, so is always maximized. Biomass error: error percentage in the estimation of the specific growth rate (blue boxes). Exchange fluxes error: Euclidean distance between the estimated values and the experimental values of the known exchange fluxes (green boxes). A: Anaerobic growth. B: Aerobic growth with known flux exchange of oxygen. C: Aerobic growth with unknown oxygen uptake. D: Aerobic growth with unknown oxygen uptake, in batch experiments (exponential phase). prod.: production; cons.: consumption; cyt: cytosolic; mit: mitochondrial; trans t cyt: transport towards cytosol.
Figure 2Best objective functions for FBA, regarding specific growth rate, knowing the oxygen uptake rate.
Errors of the FBA estimations using the five best compartmentalized objective functions (for every clasification), and “max biomass production” and “max ATP production” functions. The compartmental objectives that correspond to minimizations have negative sign, so is always maximized. Biomass error: error percentage in the estimation of the specific growth rate (blue boxes). Exchange fluxes error: Euclidean distance between the estimated values and the experimental values of the known exchange fluxes (green boxes). A: Growth rate less than or equal to 0.15 h−1. B: Growth rate higher than 0.15 h−1 and lower than or equal to 0.28 h−1. C: Growth rate higher than 0.28 h−1. prod.: production; cons.: consumption; cyt: cytosolic; mit: mitochondrial; trans t cyt: transport towards cytosol.
Figure 3Best objective functions for FBA, regarding substrate type, knowing the oxygen uptake rate.
Errors of the FBA estimations using the five best compartmentalized objective functions (for every case), and “max biomass production” and “max ATP production” functions. The compartmental objectives that correspond to minimizations have negative sign, so is always maximized. Biomass error: error percentage in the estimation of the specific growth rate (blue boxes). Exchange fluxes error: Euclidean distance between the estimated values and the experimental values of the known exchange fluxes (green boxes). A: Experiments with glucose as substrate. B: Experiments with substrates other than glucose. prod.: production; cons.: consumption; cyt: cytosolic; mit: mitochondrial; trans t cyt: transport towards cytosol.