Several species of unicellular microalgae such as the model species Chlamydomonas reinhardtii possess plastid-localized [FeFe]-hydrogenases which, via ferredoxin, can accept electrons from photosynthetic electron transport. Thereby, under specific conditions, these algae light-dependently produce molecular hydrogen (H-2), which offers a sustainable way to generate a "green" and efficient fuel. Until today, the most common way to induce sustained H-2 production is to deprive Chlamydomonas of macronutrients such as sulfur (S) which results in a downregulation of photosynthetic production of molecular oxygen (O-2) and of assimilatory processes. These acclimation responses allow the O-2 sensitive algal [FeFe]-hydrogenases to become active and serve as an alternative electron sink of photosynthesis. Despite much progress in the field and a general understanding of the underlying mechanisms, many basic and applied aspects of the photosynthetic H-2 metabolism of eukaryotic algae remain to be elucidated. One rarely investigated factor is that microalgae have also been reported to consume H-2, especially as a response to high H-2 concentrations. Here, we analyzed the H-2 uptake activities of S-deprived Chlamydomonas cells incubated in different PBRs providing different gas phase volumes, either in continuous light or in the dark. We show that H-2 uptake occurs after prolonged incubation in the light as well as in sudden darkness. Dark-induced H-2 uptake can be delayed adding the phosphoribulose kinase inhibitor glycolaldehyde, suggesting a connection to carbohydrate metabolism. The results indicate that PBR setups as well as envisioned outdoor cultivation systems with natural light-dark cycles have to be carefully designed to prevent efficiency losses.
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Biological Faculty, Moscow State University, Moscow, 119899, Vorob'evy goryBiological Faculty, Moscow State University, Moscow, 119899, Vorob'evy gory
Antal T.K.
Krendeleva T.E.
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Biological Faculty, Moscow State University, Moscow, 119899, Vorob'evy goryBiological Faculty, Moscow State University, Moscow, 119899, Vorob'evy gory
Krendeleva T.E.
Laurinavichene T.V.
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Institute of Basic Biological Problems, Russian Academy of Sciences, Pushchino, Moscow oblastBiological Faculty, Moscow State University, Moscow, 119899, Vorob'evy gory
Laurinavichene T.V.
Makarova V.V.
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Biological Faculty, Moscow State University, Moscow, 119899, Vorob'evy goryBiological Faculty, Moscow State University, Moscow, 119899, Vorob'evy gory
Makarova V.V.
Tsygankov A.A.
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Institute of Basic Biological Problems, Russian Academy of Sciences, Pushchino, Moscow oblastBiological Faculty, Moscow State University, Moscow, 119899, Vorob'evy gory
Tsygankov A.A.
Seibert M.
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Basic Sciences Center, National Renewable Energy Laboratory, Golden, COBiological Faculty, Moscow State University, Moscow, 119899, Vorob'evy gory
Seibert M.
Rubin A.B.
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Biological Faculty, Moscow State University, Moscow, 119899, Vorob'evy goryBiological Faculty, Moscow State University, Moscow, 119899, Vorob'evy gory
机构:
Prathyusha Inst Technol & Management, Biotechnol Res Div, Dept Biotechnol, Aranvoyalkuppam 602025, Tamil Nadu, IndiaPrathyusha Inst Technol & Management, Biotechnol Res Div, Dept Biotechnol, Aranvoyalkuppam 602025, Tamil Nadu, India
Vijayaraghavan, Krishnan
Karthik, Rajendran
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Prathyusha Inst Technol & Management, Biotechnol Res Div, Dept Biotechnol, Aranvoyalkuppam 602025, Tamil Nadu, IndiaPrathyusha Inst Technol & Management, Biotechnol Res Div, Dept Biotechnol, Aranvoyalkuppam 602025, Tamil Nadu, India
Karthik, Rajendran
Nalini, S. P. Kamala
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Vel Grp Educ Inst, Dept Biotechnol, Madras 600062, Tamil Nadu, IndiaPrathyusha Inst Technol & Management, Biotechnol Res Div, Dept Biotechnol, Aranvoyalkuppam 602025, Tamil Nadu, India