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This model is from the article: iRsp1095: A genome-scale reconstruction of the Rhodobacter sphaeroides metabolic network Imam S, Yilmaz S, Sohmen U, Gorzalski AS, Reed JL, Noguera DR, Donohue TJ. BMC Syst Biol. 2011 Jul 21;5:116. 21777427 ...
2005-01-01 | MODEL1106220000 | BioModels
To gain a deeper understanding of the transcription factors that regulate photosynthesis in Rhodobacter sphaeroides ChIP-seq was used to determine the genome-wide binding locations of 4 transcription factors (FnrL, PrrA, CrpK and RSP_2888) known or predicted to be involved in the regulation of photo...
ORGANISM(S): Rhodobacter sphaeroides 
Rhodobacter sphaeroides produces hydrogen gas (H2) via its nitrogenase enzyme during photoheterotrophic growth under nitrogen-limited conditions. We find that cells produce different amounts of H2 and show different growth rates, depending on the organic substrate provided (lactate, succinate, gluc...
ORGANISM(S): Rhodobacter sphaeroides 
To gain a better understanding of the transcription factors that regulate central carbon metabolism in Rhodobacter sphaeroides ChIP-seq was used to determine the genome-wide binding locations of 2 transcription factors: CceR (RSP_1663) and AkgR (RSP_0981) both predicted to be involved in the regulat...
ORGANISM(S): Rhodobacter sphaeroides 
By integrating sequence information from closely related bacteria with a compendium of high-throughput gene expression datasets, a large-scale transcriptional regulatory networks was constructed for Rhodobacter sphaeroides. Predictions from this network were validated in part using genome-wide analy...
ORGANISM(S): Rhodobacter sphaeroides 2.4.1 
To gain a deeper understanding of the transcription factors that regulate photosynthesis in Rhodobacter sphaeroides global gene expression analysis was used to determine the expression profiles of the deletion mutants of 4 transcription factors (FnrL, PrrA, CrpK and RSP_2888) known or predicted to b...
ORGANISM(S): Rhodobacter sphaeroides 
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