Jesús Díez Dapena
www.uco.es
0000-0002-1346-3528
Universidad de Córdoba
34 papers found
Refreshing results…
Direct interaction between marine cyanobacteria mediated by nanotubes
Differential Timing for Glucose Assimilation in Prochlorococcus and Coexistent Microbial Populations in the North Pacific Subtropical Gyre
Differential expression of the glucose transporter gene glcH in response to glucose and light in marine picocyanobacteria
Differential NtcA Responsiveness to 2-Oxoglutarate Underlies the Diversity of C/N Balance Regulation in Prochlorococcus
Distinct features of C/N balance regulation in Prochlorococcus sp. strain MIT9313
Glucose Uptake in Prochlorococcus: Diversity of Kinetics and Effects on the Metabolism
Physiological Studies of Glutamine Synthetases I and III from Synechococcus sp. WH7803 Reveal Differential Regulation
Glutamine Synthetase Sensitivity to Oxidative Modification during Nutrient Starvation in Prochlorococcus marinus PCC 9511
Physiological Regulation of Isocitrate Dehydrogenase and the Role of 2-Oxoglutarate in Prochlorococcus sp. Strain PCC 9511
Erratum: Physiological regulation of isocitrate dehydrogenase and the role of 2-oxoglutarate in prochlorococcus sp. strain PCC 9511 (PLoS ONE (2014) 9, 7 (e103380) DOI: 10.1371/journal.pone.0103380)
Prochlorococcus can use the Pro1404 transporter to take up glucose at nanomolar concentrations in the Atlantic Ocean
Nitrogen starvation induces extensive changes in the redox proteome of Prochlorococcus sp. strain SS120
Stress responses in Prochlorococcus MIT9313 vs. SS120 involve differential expression of genes encoding proteases ClpP, FtsH and Lon
Glucose Uptake and Its Effect on Gene Expression in Prochlorococcus
Glutamine synthetase degradation is controlled by oxidative proteolysis in the marine cyanobacterium Prochlorococcus marinus strain PCC 9511
Streamlined Regulation and Gene Loss as Adaptive Mechanisms in Prochlorococcus for Optimized Nitrogen Utilization in Oligotrophic Environments
Adaptive mechanisms of nitrogen and carbon assimilatory pathways in the marine cyanobacteria Prochlorococcus
Glutamine synthetase from the marine cyanobacteria Prochlorococcus spp.: Characterization, phylogeny and response to nutrient limitation
Nitrate is reduced by heterotrophic bacteria but not transferred to Prochlorococcus in non-axenic cultures
Regulation of glutamine synthetase by metal-catalyzed oxidative modification in the marine oxyphotobacterium Prochlorococcus
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