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Strabel, N.

Publications and source records attributed to Strabel, N..

2 recordsLinked to original sources

Physiological basis of photosynthetic hydrogen production in the cyanobacterium Synechocystis

Photosynthetic hydrogen (photoH2) production by the cyanobacterium Synechocystis sp. PCC 6803 is an attractive means for storing solar energy. However, photoH2 yields remain limited by competing electron flux pathways. Recent in vitro characterization suggests that photoH2 production requires electrons from both carbohydrate oxidation and photosynthesis. Engineered fusions between photosystem I (PSI) and hydrogenase (PSI-H2ase) aim to divert electrons toward H2 production and rely exclusively on photosynthesis. Thus, photoH2 production differs fundamentally between wildtype (WT) and PSI-H2ase fusion mutants. Here, we show that photoH2 production in WT is enhanced by supplemented glucose, consistent with the recently reported confurcating nature of HoxEFUYH H2ases. PhotoH2 production was further studied in the new psaE-hoxUYH mutant by simultaneously monitoring electron flux through PSI alongside with turnover rates of O2, CO2 and H2. PsaE-hoxUYH achieved the highest photoH2 yield and longest production period among the currently available PSI-H2ase mutants in Synechocystis, prolonged by removing O2. Upon illumination, psaE-hoxUYH exhibited high initial photoH2 production rates, which decreased in parallel with CO2 fixation and ceased immediately in the presence of O2. In absence of O2, photoH2 production still declined slowly. Therefore, in addition to CO2 fixation and O2, other yet unknown factors might limit photoH2 production under these conditions. Moreover, we traced a previously observed high H2 production phase of unclear origin in psaD-hoxYH cultures to contaminating [FeFe]-H2ases from Clostridium intestinale rather than genuine photoH2 production by the mutant. Together, these findings indicate a complex metabolic interplay tuning photoH2 production in Synechocystis WT and PSI-H2ase fusion mutants.

microbiology↗

Electron confurcation drives photosynthetic H2 production in cyanobacteria

Cyanobacteria are major contributors to global photosynthesis and are intensively studied for sustainable green H2 production. Central to this process is the bidirectional [NiFe]-hydrogenase HoxEFUYH, yet its physiological redox partners have remained unresolved. Ferredoxin, NAD(H), and NADP(H) have been proposed as partners, but the lack of active enzyme preparations has prevented a definitive assignment. Here, we purified the intact HoxEFUYH complex from Synechocystis sp. PCC 6803 under strictly anaerobic conditions and reveal its function as both a bifurcating and confurcating hydrogenase. During H2 uptake, HoxEFUYH utilizes NAD+ and oxidized ferredoxin, whereas H2 production strictly requires both NADH and reduced ferredoxin; NADPH does not support either reaction. Combining high-resolution cryo-electron microscopy with biochemical and spectroscopic analyses, our data reveal that an flavin-containing reductase module is electronically connected to the catalytic [NiFe]-hydrogenase core through an extended chain of iron-sulfur clusters, defining the structural basis for bifurcating and confurcating electron flow. These findings fundamentally revise the physiological role of HoxEFUYH by showing that photosynthetic H2 production does not rely solely on photosynthetic electrons but instead couples reduced ferredoxin from the light reaction with NADH derived from "dark" carbohydrate oxidation. This requires reassessment of current strategies for green H2 production in cyanobacteria.

biochemistry↗