2016 AIChE Annual Meeting
(398e) Elucidating the Meaning of Alternative Optimal Solutions in Flux Balance Analysis
Authors
Last year, we presented a systems identification enhanced phenotype phase plane (SID-PhPP) analysis to help characterize different phenotypes predicted by a model, how different pathways interact with each other for a given phenotype, and how such interactions differ from different phenotypes. We utilized SID-PhPP on an Escherichia coli (E. coli) core model which is a central carbon metabolic network. Traditional PhPP identified four phenotypes for the core model. By applying SID-PhPP, we discovered that one of the phenotypes is actually two distinct phenotypes undetectable by the traditional PhPP analysis. It is undetectable because the shadow prices for oxygen and carbon are the same in both phenotypes; however, SID-PhPP elucidated the presence of different active reaction sets in each phase confirming that the phases are unique phenotypes.
In this work, we further investigated the two â??sub-phasesâ?, P3â?? and P3â??â??, using a uniform random sampling algorithm, optGpSampler developed by Megchelenbrink et al., which also revealed the presence of alternative solutions. To better understand the alternative optimal solutions existing in P3â??, we applied our SID-PhPP to analyze all alternative solutions corresponding to the same carbon and oxygen uptake rates. Our analyses showed that the alternative solutions correspond to different linear combinations of two extreme reaction pathways that produce the same amount of NADPH. In addition, we developed a systems approach for calculating shadow price of each metabolite through utilizing the loadings obtained by SID-PhPP. The obtained shadow prices agree with the shadow prices obtained from the traditional PhPP method. But SID-PhPP based shadow price provides further insight into how the metabolite is utilized by the network.