Distribution of energy during the growth and formation of useful chemicals by microorganisms can define the overall performance of a biotechnological system. However, to date, this distribution has not been used to reliably predict growth characteristics of phototrophic microorganisms. The presented research addresses this application by estimating the photon-associated Gibbs energy delivered for the photoheterotrophic growth of purple non-sulfur bacteria and production of dihydrogen. The approach is successfully evaluated with the data from a fed-batch growth of Rhodopseudomonas palustris nifA∗ fixing N2 gas in phototrophic conditions and a reliable prediction of growth characteristics is demonstrated. Additionally, literature-available ex...
In this paper, Rhodobacter sphaeroides CIP 60.6 strain was newly used for the biohydrogen production...
Bioenergetic analysis may be applied in order to predict microbial growth yields, based on the Gibbs...
There is great interest in engineering photoautotrophic metabolism to generate bioproducts of societ...
Rhodobacter capsulatus is purple non-sulfur (PNS) bacterium which can produce hydrogen and CO2 by ut...
This project was aimed to use a purple non-sulphur bacterium, Rhodopseudomonas palustris, as a bioca...
International audienceTwo mutants of Rhodobacter Capsulatus (JP91 and IR3), a photosynthetic purple ...
In biological hydrogen production systems using purple non-sulfur bacteria (PNS bacteria), a thoroug...
The purple non-sulfur photosynthetic bacteria Rhodopseudomonas palustris (strain 42OL) was investiga...
Purple non-sulfur bacteria (PNSB) consist of wide genera of phototrophic bacteria found in various a...
An indigenous purple non-sulfur bacteria Rhodopseudomonas palustris PBUM001 was used to produce hydr...
A simple stoichiometric model is proposed linking the biomass yield to the enthalpy and Gibbs energy...
International audienceIn this study, experimental results of hydrogen producing process based on ana...
In this paper, Rhodobacter sphaeroides CIP 60.6 strain was newly used for the biohydrogen production...
Bioenergetic analysis may be applied in order to predict microbial growth yields, based on the Gibbs...
There is great interest in engineering photoautotrophic metabolism to generate bioproducts of societ...
Rhodobacter capsulatus is purple non-sulfur (PNS) bacterium which can produce hydrogen and CO2 by ut...
This project was aimed to use a purple non-sulphur bacterium, Rhodopseudomonas palustris, as a bioca...
International audienceTwo mutants of Rhodobacter Capsulatus (JP91 and IR3), a photosynthetic purple ...
In biological hydrogen production systems using purple non-sulfur bacteria (PNS bacteria), a thoroug...
The purple non-sulfur photosynthetic bacteria Rhodopseudomonas palustris (strain 42OL) was investiga...
Purple non-sulfur bacteria (PNSB) consist of wide genera of phototrophic bacteria found in various a...
An indigenous purple non-sulfur bacteria Rhodopseudomonas palustris PBUM001 was used to produce hydr...
A simple stoichiometric model is proposed linking the biomass yield to the enthalpy and Gibbs energy...
International audienceIn this study, experimental results of hydrogen producing process based on ana...
In this paper, Rhodobacter sphaeroides CIP 60.6 strain was newly used for the biohydrogen production...
Bioenergetic analysis may be applied in order to predict microbial growth yields, based on the Gibbs...
There is great interest in engineering photoautotrophic metabolism to generate bioproducts of societ...