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Santana-Sanchez, A.

Publications and source records attributed to Santana-Sanchez, A..

2 recordsLinked to original sources

The role of the LysR-type transcription factor PacR in regulating nitrogen metabolism in Anabaena sp. PCC7120

In the filamentous model cyanobacterium Anabaena sp. PCC 7120 heterocyst formation is triggered by changes in the C/N-ratio and relies on transcriptional reprogramming in cells. The transcription factor PacR is thought to serve as a global regulator of carbon assimilation under photoautotrophic conditions. In response to Ci-availability, PacR may modulate the carbon concentrating mechanism and photosynthesis, balancing reducing power generation while protecting the photosynthetic apparatus from oxidative damage. However, PacR also binds to promoters of genes associated with heterocyst formation, although the underlying mechanisms remain unclear. To explore this, we studied a response of a PacR-deletion mutant to a nitrogen source shift from ammonium to nitrate. The absence of PacR led to the heterocyst formation in nitrate containing media, as well as reduced growth and chlorophyll-content. We observed impaired nitrate uptake and disrupted ammonium assimilation via the GOGAT-cycle. This phenotype may be exacerbated by reduced PSI-yield and reduced expression of ferredoxin, which may lead to less reducing equivalents for nitrogen assimilation. Our results provide insights into the regulation of heterocyst-formation in Anabaena, potentially advancing its use in biotechnological applications that utilize heterocyst as microoxic cell factories for N2-fixation and hydrogen production.

plant biology↗

Proton motive force dissipation drives flavodiiron proteins to the thylakoid membrane for ferredoxin-powered O2 photoreduction

Flavodiiron proteins (FDPs) catalyse light-dependent reduction of oxygen to water in photosynthetic organisms, creating an electron sink on the acceptor side of Photosystem I that protects the photosynthetic apparatus. However, the identity of the electron donor(s) and the molecular mechanisms regulating FDP activity have remained elusive. To elucidate these issues, we employed spectroscopic and gas flux analysis of photosynthetic electron transport, bimolecular fluorescence complementation assays for in vivo protein-protein interactions in the model cyanobacterium Synechocystis sp. PCC 6803, as well as in silico surface charge modelling. We demonstrated that Ferredoxin-1 interacts with Flv1, Flv2, and Flv3, and is the main electron donor to FDP heterooligomers, which are responsible for the photoreduction of oxygen. Moreover, we revealed that association of FDP heterooligomers with thylakoid membranes is promoted by dissipation of the trans-thylakoid proton motive force, providing the first in vivo evidence of a self-regulatory feedback mechanism allowing dynamic control of FDP activity and maintenance of photosynthetic redox balance in fluctuating environments. Our findings have direct implications for rationally directing electron flux toward desired reactions in biotechnological applications.

plant biology↗