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Zeqiri, F.

Publications and source records attributed to Zeqiri, F..

2 recordsLinked to original sources

Understanding PebS-Ferredoxin Recognition: A Structural Perspective on Viral and Host Redox Partners

Cyanophages play a critical role in shaping host metabolism during infection by encoding auxiliary metabolic genes (AMGs), including enzymes involved in phycobilin biosynthesis. PebS (phycoerythrobilin synthase) is a phage-encoded ferredoxin-dependent biliverdin reductase (FDBR) that catalyses the two-step reduction of biliverdin IX (BV) to phycoerythrobilin (PEB). Although high-resolution structures are available for both PebS and its electron donor ferredoxin (Fd), the structural details governing their interaction remain unclear. This study leverages the well-characterised structural models of PebS and a host-like ferredoxin from Thermosynechococcus elongatus (Te-Fd), whose NMR structure provides a reliable basis for probing protein- protein interactions. Using [{superscript 1}N]-labelled, gallium-substituted Te-Fd, we employed NMR spectroscopy to monitor chemical shift perturbations upon binding, enabling us to probe the interaction interface in solution. Based on these data, we conducted protein-protein docking with HADDOCK to predict the interaction interface between Te-Fd and PebS. PebS variants designed to disrupt this interface did indeed show corresponding alterations in enzymatic efficiency and product formation as determined by time resolved UV/Vis spectroscopy and HPLC analyses. Utilizing the Fd encoded in the cyanophage PSSM2-Fd in our assays, we could observe a significantly improved catalytic activity, suggesting an coevolution of phage enzyme and electron donor. A comparison of the two available X-ray structures of Te-Fd and PSSM2-Fd with an alphafold-model of the Fd of the natural host Prochlorococcus NATL1A (NATL1A-Fd) also supports this evolutionary adaptation and the role of both PSSM2-Fd and PebS as AMGs involved in viral infection by PSSM2.

molecular biology↗

Promoting enzyme catalysis via azobenzene facilitated vibrational energy transfer

Azobenzene is a widely recognized tool for achieving artificial spatiotemporal control of enzyme activity using light. Photocontrol reversibility is typically based on photostationary states with varying E and Z isomer compositions achieved through irradiation at specific wavelengths. Here, we report an alternative mechanism for azobenzene based enzyme regulation, discovered through simultaneous irradiation with two wavelengths. Using two engineered variants of imidazole glycerol phosphate synthase, in which azobenzene was incorporated as an unnatural amino acid to enable reversible control under monochromatic irradiation, we uncovered unique behavior under dichromatic irradiation. Notably, a distinct spectroscopic signal from the azobenzene moiety emerged during simultaneous irradiation at 365 nm and 420 nm and vanished upon return to the dark. Intriguingly, dichromatic irradiation triggered a reproducible two-fold increase in catalytic activity and an instantaneous return to baseline activity in the dark for one variant. In contrast, the other variant and the wild-type enzyme maintained their baseline activity under the same conditions. These findings reveal an unexplored avenue for azobenzene photoswitching, offering a novel approach to photocontrol with potential applications in sequentially regulating multiple enzymes, especially when combined with monochromatic irradiation strategies.

biophysics↗