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− | From a theoretical standpoint, it was worth investigating how different combinations of precursors may influence the resulting composition of the co-polymer product. The time plot generated from solving the ODE system with different initial parameters reveals as we hypothesized that with increasing available propionyl-CoA, the PHBV was predicted to have an increasing percentage of the PHV component. | + | From a theoretical standpoint, it was worth investigating how different combinations of precursors may influence the resulting composition of the co-polymer product. The time plot generated from solving the ODE system with different initial parameters reveals as we hypothesized that with increasing available propionyl-CoA, the PHBV was predicted to have an increasing percentage of the PHV component. The initial concentrations of all enzymes were held at 0.1 μM and acetate at 1000 μM. For each run, the initial concentration of propionate was increased by 500 μM. |
+ | </p> | ||
+ | <p> | ||
+ | One of the main observations from the model results was that the resulting predicted molar ratios may be inaccurate and significantly discordant from the actual physiologically relevant amounts of PHBV found in microorganisms. Even in the case where 500 μM propionate and 1000 μM acetate was fed into the system, the occurrent molar ratio of PHV was as high as approximately 40%. This, however, was to be expected given the limited scope of the dynamic model. We decided to test other parameter alterations to see whether relative changes in behavior may be reflected concordantly with experimental data. | ||
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Revision as of 21:39, 15 October 2018