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2020 | OriginalPaper | Chapter

4. Alternative biologische und biotechnologische Verfahren zur Wasserstoffherstellung

Authors : Christina Marx, Thomas Happe

Published in: CO2 und CO – Nachhaltige Kohlenstoffquellen für die Kreislaufwirtschaft

Publisher: Springer Berlin Heidelberg

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Zusammenfassung

Kap. 3 hat gezeigt, dass die herkömmliche Herstellung von Wasserstoff mit einer bedeutenden CO2-Emission einhergeht. Kap. 4 diskutiert deshalb, welche biologischen Stoffwechselwege und biotechnologischen Verfahren zur Verfügung stehen, um Wasserstoff emissionsfrei zu produzieren. Es werden Substrate und Energiequellen, aus denen Bakterien, Mikroalgen und Biokatalysatoren Wasserstoff generieren, vorgestellt und die entsprechenden Verfahrensbedingungen bzw. limitierende und unterstützende Faktoren diskutiert.

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Literature
1.
go back to reference Molina A, Falvey M, Rondanelli R (2017) A solar radiation database for Chile. Sci Rep 7(1):14823 Molina A, Falvey M, Rondanelli R (2017) A solar radiation database for Chile. Sci Rep 7(1):14823
2.
go back to reference Blankenship RE, Tiede DM, Barber J, Brudvig GW, Fleming G, Ghirardi M, Gunner MR, Junge W, Kramer DM, Melis A, Moore TA, Moser CC, Nocera DG, Nozik AJ, Ort DR, Parson WW, Prince RC, Sayre RT (2011) Comparing photosynthetic and photovoltaic efficiencies and recognizing the potential for improvement. Science 332(6031):805–809 Blankenship RE, Tiede DM, Barber J, Brudvig GW, Fleming G, Ghirardi M, Gunner MR, Junge W, Kramer DM, Melis A, Moore TA, Moser CC, Nocera DG, Nozik AJ, Ort DR, Parson WW, Prince RC, Sayre RT (2011) Comparing photosynthetic and photovoltaic efficiencies and recognizing the potential for improvement. Science 332(6031):805–809
3.
go back to reference Smil V (2008) Energy in nature and society: general energetics of complex systems. MIT Press, Cambridge Smil V (2008) Energy in nature and society: general energetics of complex systems. MIT Press, Cambridge
4.
go back to reference Oey M, Sawyer AL, Ross IL, Hankamer B (2016) Challenges and opportunities for hydrogen production from microalgae. Plant Biotechnol J 14(7):1487–1499 Oey M, Sawyer AL, Ross IL, Hankamer B (2016) Challenges and opportunities for hydrogen production from microalgae. Plant Biotechnol J 14(7):1487–1499
5.
go back to reference Hoffert MI, Caldeira K, Benford G, Criswell DR, Green C, Herzog H, Jain AK, Kheshgi HS, Lackner KS, Lewis JS, Lightfoot HD, Manheimer W, Mankins JC, Mauel ME, Perkins LJ, Schlesinger ME, Volk T, Wigley TM (2002) Advanced technology paths to global climate stability: energy for a greenhouse planet. Science 298(5595):981–987 Hoffert MI, Caldeira K, Benford G, Criswell DR, Green C, Herzog H, Jain AK, Kheshgi HS, Lackner KS, Lewis JS, Lightfoot HD, Manheimer W, Mankins JC, Mauel ME, Perkins LJ, Schlesinger ME, Volk T, Wigley TM (2002) Advanced technology paths to global climate stability: energy for a greenhouse planet. Science 298(5595):981–987
6.
go back to reference Gupta SK, Kumari S, Reddy K, Bux F (2013) Trends in biohydrogen production: major challenges and state-of-the-art developments. Environ Technol 34(13–16):1653–1670 Gupta SK, Kumari S, Reddy K, Bux F (2013) Trends in biohydrogen production: major challenges and state-of-the-art developments. Environ Technol 34(13–16):1653–1670
7.
go back to reference Leopoldina – Nationale Akademie der Wissenschaften (2012) Bioenergie: Möglichkeiten und Grenzen. Empfehlungen. Kurzzusammenfassung und Empfehlungen Leopoldina – Nationale Akademie der Wissenschaften (2012) Bioenergie: Möglichkeiten und Grenzen. Empfehlungen. Kurzzusammenfassung und Empfehlungen
8.
go back to reference Rey FE, Heiniger EK, Harwood CS (2007) Redirection of metabolism for biological hydrogen production. Appl Environ Microbiol 73(5):1665–1671 Rey FE, Heiniger EK, Harwood CS (2007) Redirection of metabolism for biological hydrogen production. Appl Environ Microbiol 73(5):1665–1671
9.
go back to reference Vignais PM, Billoud B, Meyer J (2001) Classification and phylogeny of hydrogenases. FEMS Microbiol Rev 25(4):455–501 Vignais PM, Billoud B, Meyer J (2001) Classification and phylogeny of hydrogenases. FEMS Microbiol Rev 25(4):455–501
10.
go back to reference Vignais PM, Billoud B (2007) Occurrence, classification, and biological function of hydrogenases: an overview. Chem Rev 107(10):4206–4272 Vignais PM, Billoud B (2007) Occurrence, classification, and biological function of hydrogenases: an overview. Chem Rev 107(10):4206–4272
11.
go back to reference Trchounian K, Poladyan A, Vassilian A, Trchounian A (2012) Multiple and reversible hydrogenases for hydrogen production by Escherichia coli: dependence on fermentation substrate, pH and the F 0F 1-ATPase. Crit Rev Biochem Mol Biol 47(3):236–249 Trchounian K, Poladyan A, Vassilian A, Trchounian A (2012) Multiple and reversible hydrogenases for hydrogen production by Escherichia coli: dependence on fermentation substrate, pH and the F 0F 1-ATPase. Crit Rev Biochem Mol Biol 47(3):236–249
12.
go back to reference Sargent F (2016) The model [NiFe]-hydrogenases of Escherichia coli. Adv Microb Physiol 68:433–507 Sargent F (2016) The model [NiFe]-hydrogenases of Escherichia coli. Adv Microb Physiol 68:433–507
13.
go back to reference Trchounian K, Trchounian A (2013) Escherichia coli multiple [Ni-Fe]-hydrogenases are sensitive to osmotic stress during glycerol fermentation but at different pHs. FEBS Lett 587(21):3562–3566 Trchounian K, Trchounian A (2013) Escherichia coli multiple [Ni-Fe]-hydrogenases are sensitive to osmotic stress during glycerol fermentation but at different pHs. FEBS Lett 587(21):3562–3566
14.
go back to reference Fang HH, Liu H (2002) Effect of pH on hydrogen production from glucose by a mixed culture. Bioresour Technol 82(1):87–93 Fang HH, Liu H (2002) Effect of pH on hydrogen production from glucose by a mixed culture. Bioresour Technol 82(1):87–93
15.
go back to reference Vardar-Schara G, Krab IM, Yi G, Su WW (2007) A homogeneous fluorometric assay platform based on novel synthetic proteins. Biochem Biophys Res Commun 361(1):103–108 Vardar-Schara G, Krab IM, Yi G, Su WW (2007) A homogeneous fluorometric assay platform based on novel synthetic proteins. Biochem Biophys Res Commun 361(1):103–108
16.
go back to reference Schut GJ, Adams MW (2009) The Iron-hydrogenase of Thermotoga maritima utilizes ferredoxin and NADH synergistically: a new perspective on anaerobic hydrogen production. J Bacteriol 191(13):4451–4457 Schut GJ, Adams MW (2009) The Iron-hydrogenase of Thermotoga maritima utilizes ferredoxin and NADH synergistically: a new perspective on anaerobic hydrogen production. J Bacteriol 191(13):4451–4457
17.
go back to reference Wang S, Huang H, Kahnt J, Thauer RK (2013) A reversible electron-bifurcating ferredoxin- and NAD-dependent [FeFe]-hydrogenase (HydABC) in Moorella thermoacetica. J Bacteriol 195(6):1267–1275 Wang S, Huang H, Kahnt J, Thauer RK (2013) A reversible electron-bifurcating ferredoxin- and NAD-dependent [FeFe]-hydrogenase (HydABC) in Moorella thermoacetica. J Bacteriol 195(6):1267–1275
18.
go back to reference Wang X, Yang H, Zhang Y, Guo L (2014) Remarkable enhancement on hydrogen production performance of Rhodobacter sphaeroides by disrupting spbA and hupSL genes. Int J Hydrogen Energy 39(27):14633–14641 Wang X, Yang H, Zhang Y, Guo L (2014) Remarkable enhancement on hydrogen production performance of Rhodobacter sphaeroides by disrupting spbA and hupSL genes. Int J Hydrogen Energy 39(27):14633–14641
19.
go back to reference Stephen AJ, Archer SA, Orozco RL, Macaskie LE (2017) Advances and bottlenecks in microbial hydrogen production. Microb Biotechnol 10(5):1120–1127 Stephen AJ, Archer SA, Orozco RL, Macaskie LE (2017) Advances and bottlenecks in microbial hydrogen production. Microb Biotechnol 10(5):1120–1127
20.
go back to reference Gray CT, Gest H (1965) Biological formation of molecular hydrogen. Science 148(3667):186–192 Gray CT, Gest H (1965) Biological formation of molecular hydrogen. Science 148(3667):186–192
21.
go back to reference Chitapornpan S, Chiemchaisri C, Chiemchaisri W, Honda R, Yamamoto K (2013) Organic carbon recovery and photosynthetic bacteria population in an anaerobic membrane photo-bioreactor treating food processing wastewater. Bioresour Technol 141:65–74 Chitapornpan S, Chiemchaisri C, Chiemchaisri W, Honda R, Yamamoto K (2013) Organic carbon recovery and photosynthetic bacteria population in an anaerobic membrane photo-bioreactor treating food processing wastewater. Bioresour Technol 141:65–74
22.
go back to reference Boboescu IZ, Ilie M, Gherman VD, Mirel I, Pap B, Negrea A, Kondorosi É, Bíró T, Maróti G (2014) Revealing the factors influencing a fermentative biohydrogen production process using industrial wastewater as fermentation substrate. Biotechnol Biofuels 7(1):139 Boboescu IZ, Ilie M, Gherman VD, Mirel I, Pap B, Negrea A, Kondorosi É, Bíró T, Maróti G (2014) Revealing the factors influencing a fermentative biohydrogen production process using industrial wastewater as fermentation substrate. Biotechnol Biofuels 7(1):139
23.
go back to reference Li C, Fang HHP (2007) Fermentative hydrogen production from wastewater and solid wastes by mixed cultures. Crit Rev Environ Sci Technol 37(1):1–39 Li C, Fang HHP (2007) Fermentative hydrogen production from wastewater and solid wastes by mixed cultures. Crit Rev Environ Sci Technol 37(1):1–39
24.
go back to reference Valdez-Vazquez I, Ríos-Leal E, Esparza-García F, Cecchi F, Poggi-Varaldo HM (2005) Semi-continuous solid substrate anaerobic reactors for H 2 production from organic waste: mesophilic versus thermophilic regime. Int J Hydrogen Energy 30(14):1383–1391 Valdez-Vazquez I, Ríos-Leal E, Esparza-García F, Cecchi F, Poggi-Varaldo HM (2005) Semi-continuous solid substrate anaerobic reactors for H 2 production from organic waste: mesophilic versus thermophilic regime. Int J Hydrogen Energy 30(14):1383–1391
25.
go back to reference Yakunin AF, Fedorov AS, Laurinavichene TV, Glaser VM, Egorov NS, Tsygankov AA, Zinchenko VV, Hallenbeck PC (2001) Regulation of nitrogenase in the photosynthetic bacterium Rhodobacter sphaeroides containing draTG and nifHDK genes from Rhodobacter capsulatus. Can J Microbiol 47(3):206–212 Yakunin AF, Fedorov AS, Laurinavichene TV, Glaser VM, Egorov NS, Tsygankov AA, Zinchenko VV, Hallenbeck PC (2001) Regulation of nitrogenase in the photosynthetic bacterium Rhodobacter sphaeroides containing draTG and nifHDK genes from Rhodobacter capsulatus. Can J Microbiol 47(3):206–212
26.
go back to reference Kim DH, Lee JH, Kang S, Hallenbeck PC, Kim EJ, Lee JK, Kim MS (2014) Enhanced photo-fermentative H 2 production using Rhodobacter sphaeroides by ethanol addition and analysis of soluble microbial products. Biotechnol Biofuels 7:79 Kim DH, Lee JH, Kang S, Hallenbeck PC, Kim EJ, Lee JK, Kim MS (2014) Enhanced photo-fermentative H 2 production using Rhodobacter sphaeroides by ethanol addition and analysis of soluble microbial products. Biotechnol Biofuels 7:79
27.
go back to reference Rupprecht J, Hankamer B, Mussgnug JH, Ananyev G, Dismukes C, Kruse O (2006) Perspectives and advances of biological H 2 production in microorganisms. Appl Microbiol Biotechnol 72(3):442–449 Rupprecht J, Hankamer B, Mussgnug JH, Ananyev G, Dismukes C, Kruse O (2006) Perspectives and advances of biological H 2 production in microorganisms. Appl Microbiol Biotechnol 72(3):442–449
28.
go back to reference Ghosh S, Dairkee UK, Chowdhury R, Bhattacharya P (2017) Hydrogen from food processing wastes via photofermentation using purple non-sulfur bacteria (PNSB) – a review. Energy Convers Manag 141:299–314 Ghosh S, Dairkee UK, Chowdhury R, Bhattacharya P (2017) Hydrogen from food processing wastes via photofermentation using purple non-sulfur bacteria (PNSB) – a review. Energy Convers Manag 141:299–314
29.
go back to reference Miyake J, Kawamura S (1987) Efficiency of light energy conversion to hydrogen by the photosynthetic bacterium Rhodobacter sphaeroides. Int J Hydrogen Energy 12(3):147–149 Miyake J, Kawamura S (1987) Efficiency of light energy conversion to hydrogen by the photosynthetic bacterium Rhodobacter sphaeroides. Int J Hydrogen Energy 12(3):147–149
30.
go back to reference Androga DD, Özgür E, Eroglu I, Gündüz U, Yücel M (2011) Significance of carbon to nitrogen ratio on the long-term stability of continuous photofermentative hydrogen production. Int J Hydrogen Energy 36(24):15583–15594 Androga DD, Özgür E, Eroglu I, Gündüz U, Yücel M (2011) Significance of carbon to nitrogen ratio on the long-term stability of continuous photofermentative hydrogen production. Int J Hydrogen Energy 36(24):15583–15594
31.
go back to reference Hädicke O, Grammel H, Klamt S (2011) Metabolic network modeling of redox balancing and biohydrogen production in purple nonsulfur bacteria. BMC Syst Biol 5(150):1–18 Hädicke O, Grammel H, Klamt S (2011) Metabolic network modeling of redox balancing and biohydrogen production in purple nonsulfur bacteria. BMC Syst Biol 5(150):1–18
32.
go back to reference Vignais PM, Toussaint B (1994) Molecular biology of membrane bound H 2 uptake hydrogenases. Arch Microbiol 161(1):1–10 Vignais PM, Toussaint B (1994) Molecular biology of membrane bound H 2 uptake hydrogenases. Arch Microbiol 161(1):1–10
33.
go back to reference Bernhard M, Buhrke T, Bleijlevens B, De Lacey AL, Fernandez VM, Albracht SP, Friedrich B (2001) The H 2 sensor of Ralstonia eutropha. biochemical characteristics, spectroscopic properties, and its interaction with a histidine protein kinase. J Biol Chem 276(19):15592–15597 Bernhard M, Buhrke T, Bleijlevens B, De Lacey AL, Fernandez VM, Albracht SP, Friedrich B (2001) The H 2 sensor of Ralstonia eutropha. biochemical characteristics, spectroscopic properties, and its interaction with a histidine protein kinase. J Biol Chem 276(19):15592–15597
34.
go back to reference Franchi E, Tosi C, Scolla G, Penna GD, Rodriguez F, Pedroni PM (2004) Metabolically engineered Rhodobacter sphaeroides RV strains for improved biohydrogen photoproduction combined with disposal of food wastes. Mar Biotechnol 6(6):552–565 Franchi E, Tosi C, Scolla G, Penna GD, Rodriguez F, Pedroni PM (2004) Metabolically engineered Rhodobacter sphaeroides RV strains for improved biohydrogen photoproduction combined with disposal of food wastes. Mar Biotechnol 6(6):552–565
35.
go back to reference Öztürk Y, Yücel M, Daldal F, Mandacı S, Gündüz U, Türker L, Eroğlu İ (2006) Hydrogen production by using Rhodobacter capsulatus mutants with genetically modified electron transfer chains. Int J Hydrogen Energy 31(11):1545–1552 Öztürk Y, Yücel M, Daldal F, Mandacı S, Gündüz U, Türker L, Eroğlu İ (2006) Hydrogen production by using Rhodobacter capsulatus mutants with genetically modified electron transfer chains. Int J Hydrogen Energy 31(11):1545–1552
36.
go back to reference Nakada E, Nishikata S, Asada Y, Miyake J (1999) Photosynthetic bacterial hydrogen production combined with a fuel cell. Int J Hydrogen Energy 24(11):1053–1057 Nakada E, Nishikata S, Asada Y, Miyake J (1999) Photosynthetic bacterial hydrogen production combined with a fuel cell. Int J Hydrogen Energy 24(11):1053–1057
37.
go back to reference Lenz O, Bernhard M, Buhrke T, Schwartz E, Friedrich B (2002) The hydrogen-sensing apparatus in Ralstonia eutropha. J Mol Microbiol Biotechnol 4(3):255–262 Lenz O, Bernhard M, Buhrke T, Schwartz E, Friedrich B (2002) The hydrogen-sensing apparatus in Ralstonia eutropha. J Mol Microbiol Biotechnol 4(3):255–262
38.
go back to reference Larimer FW, Chain P, Hauser L, Lamerdin J, Malfatti S, Do L, Land ML, Pelletier DA, Beatty JT, Lang AS, Tabita FR, Gibson JL, Hanson TE, Bobst C, Torres JL, Peres C, Harrison FH, Gibson J, Harwood CS (2004) Complete genome sequence of the metabolically versatile photosynthetic bacterium Rhodopseudomonas palustris. Nat Biotechnol 22(1):55–61 Larimer FW, Chain P, Hauser L, Lamerdin J, Malfatti S, Do L, Land ML, Pelletier DA, Beatty JT, Lang AS, Tabita FR, Gibson JL, Hanson TE, Bobst C, Torres JL, Peres C, Harrison FH, Gibson J, Harwood CS (2004) Complete genome sequence of the metabolically versatile photosynthetic bacterium Rhodopseudomonas palustris. Nat Biotechnol 22(1):55–61
39.
go back to reference Lopes Pinto FA, Troshina O, Lindblad P (2002) A brief look at three decades of research on cyanobacterial hydrogen evolution. Int J Hydrogen Energy 27(11):1209–1215 Lopes Pinto FA, Troshina O, Lindblad P (2002) A brief look at three decades of research on cyanobacterial hydrogen evolution. Int J Hydrogen Energy 27(11):1209–1215
40.
go back to reference Schütz K, Happe T, Troshina O, Lindblad P, Leitão E, Oliveira P, Tamagnini P (2004) Cyanobacterial H 2 production – a comparative analysis. Planta 218(3):350–359 Schütz K, Happe T, Troshina O, Lindblad P, Leitão E, Oliveira P, Tamagnini P (2004) Cyanobacterial H 2 production – a comparative analysis. Planta 218(3):350–359
42.
go back to reference Happe T, Schütz K, Böhme H (2000) Transcriptional and mutational analysis of the uptake hydrogenase of the filamentous cyanobacterium Anabaena variabilis ATCC 29413. J Bacteriol 182(6):1624–1631 Happe T, Schütz K, Böhme H (2000) Transcriptional and mutational analysis of the uptake hydrogenase of the filamentous cyanobacterium Anabaena variabilis ATCC 29413. J Bacteriol 182(6):1624–1631
43.
go back to reference Gutekunst K, Chen X, Schreiber K, Kaspar U, Makam S, Appel J (2014) The bidirectional NiFe-hydrogenase in Synechocystis sp PCC 6803 is reduced by flavodoxin and ferredoxin and is essential under mixotrophic, nitrate-limiting conditions. J Biol Chem 289(4):1930–1937 Gutekunst K, Chen X, Schreiber K, Kaspar U, Makam S, Appel J (2014) The bidirectional NiFe-hydrogenase in Synechocystis sp PCC 6803 is reduced by flavodoxin and ferredoxin and is essential under mixotrophic, nitrate-limiting conditions. J Biol Chem 289(4):1930–1937
44.
go back to reference Masukawa H, Mochimaru M, Sakurai H (2002) Disruption of the uptake hydrogenase gene, but not of the bidirectional hydrogenase gene, leads to enhanced photobiological hydrogen production by the nitrogen-fixing cyanobacterium Anabaena sp. PCC 7120. Appl Microbiol Biotechnol 58(5):618–624 Masukawa H, Mochimaru M, Sakurai H (2002) Disruption of the uptake hydrogenase gene, but not of the bidirectional hydrogenase gene, leads to enhanced photobiological hydrogen production by the nitrogen-fixing cyanobacterium Anabaena sp. PCC 7120. Appl Microbiol Biotechnol 58(5):618–624
45.
go back to reference Yoshino F, Ikeda H, Masukawa H, Sakurai H (2007) High photobiological hydrogen production activity of a Nostoc sp. PCC 7422 uptake hydrogenase-deficient mutant with high nitrogenase activity. Mar Biotechnol 9(1):101–112 Yoshino F, Ikeda H, Masukawa H, Sakurai H (2007) High photobiological hydrogen production activity of a Nostoc sp. PCC 7422 uptake hydrogenase-deficient mutant with high nitrogenase activity. Mar Biotechnol 9(1):101–112
46.
go back to reference Khetkorn W, Lindblad P, Incharoensakdi A (2012) Inactivation of uptake hydrogenase leads to enhanced and sustained hydrogen production with high nitrogenase activity under high light exposure in the cyanobacterium Anabaena siamensis TISTR 8012. J Biol Eng 6(1):19 Khetkorn W, Lindblad P, Incharoensakdi A (2012) Inactivation of uptake hydrogenase leads to enhanced and sustained hydrogen production with high nitrogenase activity under high light exposure in the cyanobacterium Anabaena siamensis TISTR 8012. J Biol Eng 6(1):19
47.
go back to reference Gutthann F, Egert M, Marques A, Appel J (2007) Inhibition of respiration and nitrate assimilation enhances photohydrogen evolution under low oxygen concentrations in Synechocystis sp. PCC 6803. Biochim Biophys Acta 1767(2):161–169 Gutthann F, Egert M, Marques A, Appel J (2007) Inhibition of respiration and nitrate assimilation enhances photohydrogen evolution under low oxygen concentrations in Synechocystis sp. PCC 6803. Biochim Biophys Acta 1767(2):161–169
48.
go back to reference Baebprasert W, Jantaro S, Khetkorn W, Lindblad P, Incharoensakdi A (2011) Increased H 2 production in the cyanobacterium Synechocystis sp. strain PCC 6803 by redirecting the electron supply via genetic engineering of the nitrate assimilation pathway. Metab Eng 13(5):610–616 Baebprasert W, Jantaro S, Khetkorn W, Lindblad P, Incharoensakdi A (2011) Increased H 2 production in the cyanobacterium Synechocystis sp. strain PCC 6803 by redirecting the electron supply via genetic engineering of the nitrate assimilation pathway. Metab Eng 13(5):610–616
49.
go back to reference Masukawa H, Sakurai H, Hausinger RP, Inoue K (2017) Increased heterocyst frequency by patN disruption in Anabaena leads to enhanced photobiological hydrogen production at high light intensity and high cell density. Appl Microbiol Biotechnol 101(5):2177–2188 Masukawa H, Sakurai H, Hausinger RP, Inoue K (2017) Increased heterocyst frequency by patN disruption in Anabaena leads to enhanced photobiological hydrogen production at high light intensity and high cell density. Appl Microbiol Biotechnol 101(5):2177–2188
50.
go back to reference Bandyopadhyay A, Stöckel J, Min H, Sherman LA, Pakrasi HB (2010) High rates of photobiological H 2 production by a cyanobacterium under aerobic conditions. Nat Commun 1:139 Bandyopadhyay A, Stöckel J, Min H, Sherman LA, Pakrasi HB (2010) High rates of photobiological H 2 production by a cyanobacterium under aerobic conditions. Nat Commun 1:139
51.
go back to reference Kothari A, Potrafka R, Garcia-Pichel F (2012) Diversity in hydrogen evolution from bidirectional hydrogenases in cyanobacteria from terrestrial, freshwater and marine intertidal environments. J Biotechnol 162(1):105–114 Kothari A, Potrafka R, Garcia-Pichel F (2012) Diversity in hydrogen evolution from bidirectional hydrogenases in cyanobacteria from terrestrial, freshwater and marine intertidal environments. J Biotechnol 162(1):105–114
52.
go back to reference Melis A, Zhang L, Forestier M, Ghirardi ML, Seibert M (2000) Sustained photobiological hydrogen gas production upon reversible inactivation of oxygen evolution in the Green Alga Chlamydomonas reinhardtii. Plant Physiol 122(1):127–136 Melis A, Zhang L, Forestier M, Ghirardi ML, Seibert M (2000) Sustained photobiological hydrogen gas production upon reversible inactivation of oxygen evolution in the Green Alga Chlamydomonas reinhardtii. Plant Physiol 122(1):127–136
53.
go back to reference Melis A, Happe T (2001) Hydrogen production. Green algae as a source of energy. Plant Physiol 127(3):740–748 Melis A, Happe T (2001) Hydrogen production. Green algae as a source of energy. Plant Physiol 127(3):740–748
54.
go back to reference Godde D, Trebst A (1980) NADH as electron donor for the photosynthetic membrane of Chlamydomonas reinhardtii. Arch Microbiol 127(3):245–252 Godde D, Trebst A (1980) NADH as electron donor for the photosynthetic membrane of Chlamydomonas reinhardtii. Arch Microbiol 127(3):245–252
55.
go back to reference Bamberger ES, King D, Erbes DL, Gibbs M (1982) H 2 and CO 2 evolution by anaerobically adapted Chlamydomonas reinhardtii F-60. Plant Physiol 69(6):1268–1273 Bamberger ES, King D, Erbes DL, Gibbs M (1982) H 2 and CO 2 evolution by anaerobically adapted Chlamydomonas reinhardtii F-60. Plant Physiol 69(6):1268–1273
56.
go back to reference Mus F, Cournac L, Cardettini V, Caruana A, Peltier G (2005) Inhibitor studies on non-photochemical plastoquinone reduction and H 2 photoproduction in Chlamydomonas reinhardtii. Biochim Biophys Acta 1708(3):322–332 Mus F, Cournac L, Cardettini V, Caruana A, Peltier G (2005) Inhibitor studies on non-photochemical plastoquinone reduction and H 2 photoproduction in Chlamydomonas reinhardtii. Biochim Biophys Acta 1708(3):322–332
57.
go back to reference Baltz A, Dang KV, Beyly A, Auroy P, Richaud P, Cournac L, Peltier G (2014) Plastidial expression of type II NAD(P)H dehydrogenase increases the reducing state of plastoquinones and hydrogen photoproduction rate by the indirect pathway in Chlamydomonas reinhardtii. Plant Physiol 165(3):1344–1352 Baltz A, Dang KV, Beyly A, Auroy P, Richaud P, Cournac L, Peltier G (2014) Plastidial expression of type II NAD(P)H dehydrogenase increases the reducing state of plastoquinones and hydrogen photoproduction rate by the indirect pathway in Chlamydomonas reinhardtii. Plant Physiol 165(3):1344–1352
58.
go back to reference Chochois V, Dauvillée D, Beyly A, Tolleter D, Cuiné S, Timpano H, Ball S, Cournac L, Peltier G (2009) Hydrogen production in Chlamydomonas: photosystem II-dependent and -independent pathways differ in their requirement for starch metabolism. Plant Physiol 151(2):631–640 Chochois V, Dauvillée D, Beyly A, Tolleter D, Cuiné S, Timpano H, Ball S, Cournac L, Peltier G (2009) Hydrogen production in Chlamydomonas: photosystem II-dependent and -independent pathways differ in their requirement for starch metabolism. Plant Physiol 151(2):631–640
59.
go back to reference Grossman AR, Catalanotti C, Yang W, Dubini A, Magneschi L, Subramanian V, Posewitz MC, Seibert M (2011) Multiple facets of anoxic metabolism and hydrogen production in the unicellular green alga Chlamydomonas reinhardtii. New Phytol 190(2):279–288 Grossman AR, Catalanotti C, Yang W, Dubini A, Magneschi L, Subramanian V, Posewitz MC, Seibert M (2011) Multiple facets of anoxic metabolism and hydrogen production in the unicellular green alga Chlamydomonas reinhardtii. New Phytol 190(2):279–288
60.
go back to reference Atteia A, van Lis R, Tielens AG (1827) Martin WF (2013) Anaerobic energy metabolism in unicellular photosynthetic eukaryotes. Biochim Biophys Acta 2:210–223 Atteia A, van Lis R, Tielens AG (1827) Martin WF (2013) Anaerobic energy metabolism in unicellular photosynthetic eukaryotes. Biochim Biophys Acta 2:210–223
61.
go back to reference Noth J, Krawietz D, Hemschemeier A, Happe T (2013) Pyruvate:ferredoxin oxidoreductase is coupled to light-independent hydrogen production in Chlamydomonas reinhardtii. J Biol Chem 288(6):4368–4377 Noth J, Krawietz D, Hemschemeier A, Happe T (2013) Pyruvate:ferredoxin oxidoreductase is coupled to light-independent hydrogen production in Chlamydomonas reinhardtii. J Biol Chem 288(6):4368–4377
62.
go back to reference van Lis R, Baffert C, Couté Y, Nitschke W, Atteia A (2013) Chlamydomonas reinhardtii chloroplasts contain a homodimeric pyruvate:ferredoxin oxidoreductase that functions with FDX1. Plant Physiol 161(1):57–71 van Lis R, Baffert C, Couté Y, Nitschke W, Atteia A (2013) Chlamydomonas reinhardtii chloroplasts contain a homodimeric pyruvate:ferredoxin oxidoreductase that functions with FDX1. Plant Physiol 161(1):57–71
63.
go back to reference Ghirardi ML, Togasaki RK, Seibert M (1997) Oxygen sensitivity of algal H 2-production. Appl Biochem Biotechnol 63–65:141–151 Ghirardi ML, Togasaki RK, Seibert M (1997) Oxygen sensitivity of algal H 2-production. Appl Biochem Biotechnol 63–65:141–151
64.
go back to reference Melis A, Seibert M, Happe T (2004) Genomics of green algal hydrogen research. Photosynth Res 82(3):277–288 Melis A, Seibert M, Happe T (2004) Genomics of green algal hydrogen research. Photosynth Res 82(3):277–288
65.
go back to reference Davies JP, Yildiz FH, Grossman A (1996) Sac1, a putative regulator that is critical for survival of Chlamydomonas reinhardtii during sulfur deprivation. EMBO J 15(9):2150–2159 Davies JP, Yildiz FH, Grossman A (1996) Sac1, a putative regulator that is critical for survival of Chlamydomonas reinhardtii during sulfur deprivation. EMBO J 15(9):2150–2159
66.
go back to reference Wykoff DD, Davies JP, Melis A, Grossman AR (1998) The regulation of photosynthetic electron transport during nutrient deprivation in Chlamydomonas reinhardtii. Plant Physiol 117(1):129–139 Wykoff DD, Davies JP, Melis A, Grossman AR (1998) The regulation of photosynthetic electron transport during nutrient deprivation in Chlamydomonas reinhardtii. Plant Physiol 117(1):129–139
67.
go back to reference Chen HC, Newton AJ, Melis A (2005) Role of SulP, a nuclear-encoded chloroplast sulfate permease, in sulfate transport and H 2 evolution in Chlamydomonas reinhardtii. Photosynth Res 84(1–3):289–296 Chen HC, Newton AJ, Melis A (2005) Role of SulP, a nuclear-encoded chloroplast sulfate permease, in sulfate transport and H 2 evolution in Chlamydomonas reinhardtii. Photosynth Res 84(1–3):289–296
68.
go back to reference Happe T, Kaminski A (2002) Differential regulation of the Fe-hydrogenase during anaerobic adaptation in the green alga Chlamydomonas reinhardtii. Eur J Biochem 269(3):1022–1032 Happe T, Kaminski A (2002) Differential regulation of the Fe-hydrogenase during anaerobic adaptation in the green alga Chlamydomonas reinhardtii. Eur J Biochem 269(3):1022–1032
69.
go back to reference Mus F, Dubini A, Seibert M, Posewitz MC, Grossman AR (2007) Anaerobic acclimation in Chlamydomonas reinhardtii: anoxic gene expression, hydrogenase induction, and metabolic pathways. J Biol Chem 282(35):25475–25486 Mus F, Dubini A, Seibert M, Posewitz MC, Grossman AR (2007) Anaerobic acclimation in Chlamydomonas reinhardtii: anoxic gene expression, hydrogenase induction, and metabolic pathways. J Biol Chem 282(35):25475–25486
70.
go back to reference Hemschemeier A, Fouchard S, Cournac L, Peltier G, Happe T (2008) Hydrogen production by Chlamydomonas reinhardtii: an elaborate interplay of electron sources and sinks. Planta 227(2):397–407 Hemschemeier A, Fouchard S, Cournac L, Peltier G, Happe T (2008) Hydrogen production by Chlamydomonas reinhardtii: an elaborate interplay of electron sources and sinks. Planta 227(2):397–407
71.
go back to reference Winkler M, Heil B, Heil B, Happe T (2002) Isolation and molecular characterization of the [Fe]-hydrogenase from the unicellular green alga Chlorella fusca. Biochim Biophys Acta 1576(3):330–334 Winkler M, Heil B, Heil B, Happe T (2002) Isolation and molecular characterization of the [Fe]-hydrogenase from the unicellular green alga Chlorella fusca. Biochim Biophys Acta 1576(3):330–334
72.
go back to reference Kosourov S, Seibert M, Ghirardi ML (2003) Effects of extracellular pH on the metabolic pathways in sulfur-deprived, H 2-producing Chlamydomonas reinhardtii cultures. Plant Cell Physiol 44(2):146–155 Kosourov S, Seibert M, Ghirardi ML (2003) Effects of extracellular pH on the metabolic pathways in sulfur-deprived, H 2-producing Chlamydomonas reinhardtii cultures. Plant Cell Physiol 44(2):146–155
73.
go back to reference Hemschemeier A, Happe T (2005) The exceptional photofermentative hydrogen metabolism of the green alga Chlamydomonas reinhardtii. Biochem Soc Trans 33(Pt 1):39–41 Hemschemeier A, Happe T (2005) The exceptional photofermentative hydrogen metabolism of the green alga Chlamydomonas reinhardtii. Biochem Soc Trans 33(Pt 1):39–41
74.
go back to reference Philipps G, Happe T, Hemschemeier A (2012) Nitrogen deprivation results in photosynthetic hydrogen production in Chlamydomonas reinhardtii. Planta 235(4):729–745 Philipps G, Happe T, Hemschemeier A (2012) Nitrogen deprivation results in photosynthetic hydrogen production in Chlamydomonas reinhardtii. Planta 235(4):729–745
75.
go back to reference Juergens MT, Disbrow B, Shachar-Hill Y (2016) The relationship of triacylglycerol and starch accumulation to carbon and energy flows during nutrient deprivation in Chlamydomonas reinhardtii. Plant Physiol 171(4):2445–2457 Juergens MT, Disbrow B, Shachar-Hill Y (2016) The relationship of triacylglycerol and starch accumulation to carbon and energy flows during nutrient deprivation in Chlamydomonas reinhardtii. Plant Physiol 171(4):2445–2457
76.
go back to reference Volgusheva A, Kukarskikh G, Krendeleva T, Rubin A, Mamedov F (2015) Hydrogen photoproduction in green algae Chlamydomonas reinhardtii under magnesium deprivation. RSC Advances 5(8):5633–5637 Volgusheva A, Kukarskikh G, Krendeleva T, Rubin A, Mamedov F (2015) Hydrogen photoproduction in green algae Chlamydomonas reinhardtii under magnesium deprivation. RSC Advances 5(8):5633–5637
77.
go back to reference Volgusheva AA, Jokel M, Allahverdiyeva Y, Kukarskikh GP, Lukashev EP, Lambreva MD, Krendeleva TE, Antal TK (2017) Comparative analyses of H 2 photoproduction in magnesium- and sulfur-starved Chlamydomonas reinhardtii cultures. Physiol Plant 161(1):124–137 Volgusheva AA, Jokel M, Allahverdiyeva Y, Kukarskikh GP, Lukashev EP, Lambreva MD, Krendeleva TE, Antal TK (2017) Comparative analyses of H 2 photoproduction in magnesium- and sulfur-starved Chlamydomonas reinhardtii cultures. Physiol Plant 161(1):124–137
78.
go back to reference Winkler M, Kuhlgert S, Hippler M, Happe T (2009) Characterization of the key step for light-driven hydrogen evolution in green algae. J Biol Chem 284(52):36620–36627 Winkler M, Kuhlgert S, Hippler M, Happe T (2009) Characterization of the key step for light-driven hydrogen evolution in green algae. J Biol Chem 284(52):36620–36627
79.
go back to reference Hemschemeier A, Happe T (2011) Alternative photosynthetic electron transport pathways during anaerobiosis in the green alga Chlamydomonas reinhardtii. Biochim Biophys Acta 8:919–926 Hemschemeier A, Happe T (2011) Alternative photosynthetic electron transport pathways during anaerobiosis in the green alga Chlamydomonas reinhardtii. Biochim Biophys Acta 8:919–926
80.
go back to reference Winkler M, Hemschemeier A, Jacobs J, Stripp S, Happe T (2010) Multiple ferredoxin isoforms in Chlamydomonas reinhardtii – their role under stress conditions and biotechnological implications. Eur J Cell Biol 89(12):998–1004 Winkler M, Hemschemeier A, Jacobs J, Stripp S, Happe T (2010) Multiple ferredoxin isoforms in Chlamydomonas reinhardtii – their role under stress conditions and biotechnological implications. Eur J Cell Biol 89(12):998–1004
82.
go back to reference Joliot P, Johnson GN (2011) Regulation of cyclic and linear electron flow in higher plants. Proc Natl Acad Sci U S A 108(32):13317–13322 Joliot P, Johnson GN (2011) Regulation of cyclic and linear electron flow in higher plants. Proc Natl Acad Sci U S A 108(32):13317–13322
83.
go back to reference Hertle AP, Blunder T, Wunder T, Pesaresi P, Pribil M, Armbruster U, Leister D (2013) PGRL1 Is the elusive ferredoxin-plastoquinone reductase in photosynthetic cyclic electron flow. Mol Cell 49(3):511–523 Hertle AP, Blunder T, Wunder T, Pesaresi P, Pribil M, Armbruster U, Leister D (2013) PGRL1 Is the elusive ferredoxin-plastoquinone reductase in photosynthetic cyclic electron flow. Mol Cell 49(3):511–523
84.
go back to reference Mosebach L, Heilmann C, Mutoh R, Gäbelein P, Steinbeck J, Happe T, Ikegami T, Hanke G, Kurisu G, Hippler M (2017) Association of ferredoxin:NADP + oxidoreductase with the photosynthetic apparatus modulates electron transfer in Chlamydomonas reinhardtii. Photosynth Res 134(3):291–306 Mosebach L, Heilmann C, Mutoh R, Gäbelein P, Steinbeck J, Happe T, Ikegami T, Hanke G, Kurisu G, Hippler M (2017) Association of ferredoxin:NADP + oxidoreductase with the photosynthetic apparatus modulates electron transfer in Chlamydomonas reinhardtii. Photosynth Res 134(3):291–306
85.
go back to reference Steinbeck J, Nikolova D, Weingarten R, Johnson X, Richaud P, Peltier G, Hermann M, Magneschi L, Hippler M (2015) Deletion of proton gradient regulation 5 (PGR5) and PGR5-like 1 (PGRL1) proteins promote sustainable light-driven hydrogen production in Chlamydomonas reinhardtii due to increased PSII activity under sulfur deprivation. Front Plant Sci 6:892 Steinbeck J, Nikolova D, Weingarten R, Johnson X, Richaud P, Peltier G, Hermann M, Magneschi L, Hippler M (2015) Deletion of proton gradient regulation 5 (PGR5) and PGR5-like 1 (PGRL1) proteins promote sustainable light-driven hydrogen production in Chlamydomonas reinhardtii due to increased PSII activity under sulfur deprivation. Front Plant Sci 6:892
86.
go back to reference Giannelli L, Scoma A, Torzillo G (2009) Interplay between light intensity, chlorophyll concentration and culture mixing on the hydrogen production in sulfur-deprived Chlamydomonas reinhardtii cultures grown in laboratory photobioreactors. Biotechnol Bioeng 104(1):76–90 Giannelli L, Scoma A, Torzillo G (2009) Interplay between light intensity, chlorophyll concentration and culture mixing on the hydrogen production in sulfur-deprived Chlamydomonas reinhardtii cultures grown in laboratory photobioreactors. Biotechnol Bioeng 104(1):76–90
87.
go back to reference Wijffels RH, Barbosa MJ (2010) An outlook on microalgal biofuels. Science 329(5993):796–799 Wijffels RH, Barbosa MJ (2010) An outlook on microalgal biofuels. Science 329(5993):796–799
88.
go back to reference Janssen M, Tramper J, Mur LR, Wijffels RH (2003) Enclosed outdoor photobioreactors: light regime, photosynthetic efficiency, scale-up, and future prospects. Biotechnol Bioeng 81(2):193–210 Janssen M, Tramper J, Mur LR, Wijffels RH (2003) Enclosed outdoor photobioreactors: light regime, photosynthetic efficiency, scale-up, and future prospects. Biotechnol Bioeng 81(2):193–210
89.
go back to reference Chen M, Blankenship RE (2011) Expanding the solar spectrum used by photosynthesis. Trends Plant Sci 16(8):427–431 Chen M, Blankenship RE (2011) Expanding the solar spectrum used by photosynthesis. Trends Plant Sci 16(8):427–431
90.
go back to reference Bernát G, Waschewski N, Rögner M (2009) Towards efficient hydrogen production: the impact of antenna size and external factors on electron transport dynamics in Synechocystis PCC 6803. Photosynth Res 99(3):205–216 Bernát G, Waschewski N, Rögner M (2009) Towards efficient hydrogen production: the impact of antenna size and external factors on electron transport dynamics in Synechocystis PCC 6803. Photosynth Res 99(3):205–216
91.
go back to reference Zhu XG, de Sturler E, Long SP (2007) Optimizing the distribution of resources between enzymes of carbon metabolism can dramatically increase photosynthetic rate: a numerical simulation using an evolutionary algorithm. Plant Physiol 145(2):513–526 Zhu XG, de Sturler E, Long SP (2007) Optimizing the distribution of resources between enzymes of carbon metabolism can dramatically increase photosynthetic rate: a numerical simulation using an evolutionary algorithm. Plant Physiol 145(2):513–526
92.
go back to reference Pinto TS, Malcata FX, Arrabaça JD, Silva JM, Spreitzer RJ, Esquível MG (2013) Rubisco mutants of Chlamydomonas reinhardtii enhance photosynthetic hydrogen production. Appl Microbiol Biotechnol 97(12):5635–5643 Pinto TS, Malcata FX, Arrabaça JD, Silva JM, Spreitzer RJ, Esquível MG (2013) Rubisco mutants of Chlamydomonas reinhardtii enhance photosynthetic hydrogen production. Appl Microbiol Biotechnol 97(12):5635–5643
93.
go back to reference Chang CH, King PW, Ghirardi ML, Kim K (2007) Atomic resolution modeling of the ferredoxin:[FeFe] hydrogenase complex from Chlamydomonas reinhardtii. Biophys J 93(9):3034–3045 Chang CH, King PW, Ghirardi ML, Kim K (2007) Atomic resolution modeling of the ferredoxin:[FeFe] hydrogenase complex from Chlamydomonas reinhardtii. Biophys J 93(9):3034–3045
94.
go back to reference Wu S, Xu L, Huang R, Wang Q (2011) Improved biohydrogen production with an expression of codon-optimized hemH and lba genes in the chloroplast of Chlamydomonas reinhardtii. Bioresour Technol 102(3):2610–2616 Wu S, Xu L, Huang R, Wang Q (2011) Improved biohydrogen production with an expression of codon-optimized hemH and lba genes in the chloroplast of Chlamydomonas reinhardtii. Bioresour Technol 102(3):2610–2616
95.
go back to reference Chochois V, Constans L, Dauvillée D, Beyly A, Solivérès M, Ball S, Peltier G, Cournac L (2010) Relationships between PSII-independent hydrogen bioproduction and starch metabolism as evidenced from isolation of starch catabolism mutants in the green alga Chlamydomonas reinhardtii. Int J Hydrogen Energy 35(19):10731–10740 Chochois V, Constans L, Dauvillée D, Beyly A, Solivérès M, Ball S, Peltier G, Cournac L (2010) Relationships between PSII-independent hydrogen bioproduction and starch metabolism as evidenced from isolation of starch catabolism mutants in the green alga Chlamydomonas reinhardtii. Int J Hydrogen Energy 35(19):10731–10740
96.
go back to reference Scoma A, Krawietz D, Faraloni C, Giannelli L, Happe T, Torzillo G (2012) Sustained H 2 production in a Chlamydomonas reinhardtii D1 protein mutant. J Biotechnol 157(4):613–619 Scoma A, Krawietz D, Faraloni C, Giannelli L, Happe T, Torzillo G (2012) Sustained H 2 production in a Chlamydomonas reinhardtii D1 protein mutant. J Biotechnol 157(4):613–619
97.
go back to reference Lin HD, Liu BH, Kuo TT, Tsai HC, Feng TY, Huang CC, Chien LF (2013) Knockdown of PsbO leads to induction of HydA and production of photobiological H 2 in the green alga Chlorella sp. DT. Bioresour Technol 143:154–162 Lin HD, Liu BH, Kuo TT, Tsai HC, Feng TY, Huang CC, Chien LF (2013) Knockdown of PsbO leads to induction of HydA and production of photobiological H 2 in the green alga Chlorella sp. DT. Bioresour Technol 143:154–162
98.
go back to reference Surzycki R, Cournac L, Peltier G, Rochaix JD (2007) Potential for hydrogen production with inducible chloroplast gene expression in Chlamydomonas. Proc Natl Acad Sci U S A 104(44):17548–17553 Surzycki R, Cournac L, Peltier G, Rochaix JD (2007) Potential for hydrogen production with inducible chloroplast gene expression in Chlamydomonas. Proc Natl Acad Sci U S A 104(44):17548–17553
99.
go back to reference Fritsch J, Scheerer P, Frielingsdorf S, Kroschinsky S, Friedrich B, Lenz O, Spahn CM (2011) The crystal structure of an oxygen-tolerant hydrogenase uncovers a novel iron-sulphur centre. Nature 479(7372):249–252 Fritsch J, Scheerer P, Frielingsdorf S, Kroschinsky S, Friedrich B, Lenz O, Spahn CM (2011) The crystal structure of an oxygen-tolerant hydrogenase uncovers a novel iron-sulphur centre. Nature 479(7372):249–252
100.
go back to reference Goris T, Wait AF, Saggu M, Fritsch J, Heidary N, Stein M, Zebger I, Lendzian F, Armstrong FA, Friedrich B, Lenz O (2011) A unique iron-sulfur cluster is crucial for oxygen tolerance of a [NiFe]-hydrogenase. Nat Chem Biol 7(5):310–318 Goris T, Wait AF, Saggu M, Fritsch J, Heidary N, Stein M, Zebger I, Lendzian F, Armstrong FA, Friedrich B, Lenz O (2011) A unique iron-sulfur cluster is crucial for oxygen tolerance of a [NiFe]-hydrogenase. Nat Chem Biol 7(5):310–318
101.
go back to reference Peters JW (2009) Carbon monoxide and cyanide ligands in the active site of [FeFe]-hydrogenases. Met Ions Life Sci 6:179–218 Peters JW (2009) Carbon monoxide and cyanide ligands in the active site of [FeFe]-hydrogenases. Met Ions Life Sci 6:179–218
103.
go back to reference Peters JW, Schut GJ, Boyd ES, Mulder DW, Shepard EM, Broderick JB, King PW (1853) Adams MW (2015) [FeFe]- and [NiFe]-hydrogenase diversity, mechanism, and maturation. Biochim Biophys Acta 6:1350–1369 Peters JW, Schut GJ, Boyd ES, Mulder DW, Shepard EM, Broderick JB, King PW (1853) Adams MW (2015) [FeFe]- and [NiFe]-hydrogenase diversity, mechanism, and maturation. Biochim Biophys Acta 6:1350–1369
104.
go back to reference Lubitz W, Ogata H, Rüdiger O, Reijerse E (2014) Hydrogenases. Chem Rev 114(8):4081–4148 Lubitz W, Ogata H, Rüdiger O, Reijerse E (2014) Hydrogenases. Chem Rev 114(8):4081–4148
105.
go back to reference Posewitz MC, Smolinski SL, Kanakagiri S, Melis A, Seibert M, Ghirardi ML (2004) Hydrogen photoproduction is attenuated by disruption of an isoamylase gene in Chlamydomonas reinhardtii. Plant Cell 16(8):2151–2163 Posewitz MC, Smolinski SL, Kanakagiri S, Melis A, Seibert M, Ghirardi ML (2004) Hydrogen photoproduction is attenuated by disruption of an isoamylase gene in Chlamydomonas reinhardtii. Plant Cell 16(8):2151–2163
106.
go back to reference Sawyer A, Bai Y, Lu Y, Hemschemeier A, Happe T (2017) Compartmentalisation of [FeFe]-hydrogenase maturation in Chlamydomonas reinhardtii. Plant J 90(6):1134–1143 Sawyer A, Bai Y, Lu Y, Hemschemeier A, Happe T (2017) Compartmentalisation of [FeFe]-hydrogenase maturation in Chlamydomonas reinhardtii. Plant J 90(6):1134–1143
107.
go back to reference Kuchenreuther JM, Grady-Smith CS, Bingham AS, George SJ, Cramer SP, Swartz JR (2010) High-yield expression of heterologous [FeFe] hydrogenases in Escherichia coli. PLoS ONE 5(11):e15491 Kuchenreuther JM, Grady-Smith CS, Bingham AS, George SJ, Cramer SP, Swartz JR (2010) High-yield expression of heterologous [FeFe] hydrogenases in Escherichia coli. PLoS ONE 5(11):e15491
108.
go back to reference Yacoby I, Pochekailov S, Toporik H, Ghirardi ML, King PW, Zhang S (2011) Photosynthetic electron partitioning between [FeFe]-hydrogenase and ferredoxin:NADP +-oxidoreductase (FNR) enzymes in vitro. Proc Natl Acad Sci U S A 108(23):9396–9401 Yacoby I, Pochekailov S, Toporik H, Ghirardi ML, King PW, Zhang S (2011) Photosynthetic electron partitioning between [FeFe]-hydrogenase and ferredoxin:NADP +-oxidoreductase (FNR) enzymes in vitro. Proc Natl Acad Sci U S A 108(23):9396–9401
109.
go back to reference Berggren G, Adamska A, Lambertz C, Simmons TR, Esselborn J, Atta M, Gambarelli S, Mouesca JM, Reijerse E, Lubitz W, Happe T, Artero V, Fontecave M (2013) Biomimetic assembly and activation of [FeFe]-hydrogenases. Nature 499(7456):66–69 Berggren G, Adamska A, Lambertz C, Simmons TR, Esselborn J, Atta M, Gambarelli S, Mouesca JM, Reijerse E, Lubitz W, Happe T, Artero V, Fontecave M (2013) Biomimetic assembly and activation of [FeFe]-hydrogenases. Nature 499(7456):66–69
110.
go back to reference Esselborn J, Lambertz C, Adamska-Venkates A, Simmons T, Berggren G, Noth J, Siebel J, Hemschemeier A, Artero V, Reijerse E, Fontecave M, Lubitz W, Happe T (2013) Spontaneous activation of [FeFe]-hydrogenases by an inorganic [2Fe] active site mimic. Nat Chem Biol 9(10):607–609 Esselborn J, Lambertz C, Adamska-Venkates A, Simmons T, Berggren G, Noth J, Siebel J, Hemschemeier A, Artero V, Reijerse E, Fontecave M, Lubitz W, Happe T (2013) Spontaneous activation of [FeFe]-hydrogenases by an inorganic [2Fe] active site mimic. Nat Chem Biol 9(10):607–609
111.
go back to reference Schwarze A, Kopczak MJ, Rögner M, Lenz O (2010) Requirements for construction of a functional hybrid complex of photosystem I and [NiFe]-hydrogenase. Appl Environ Microbiol 76(8):2641–2651 Schwarze A, Kopczak MJ, Rögner M, Lenz O (2010) Requirements for construction of a functional hybrid complex of photosystem I and [NiFe]-hydrogenase. Appl Environ Microbiol 76(8):2641–2651
112.
go back to reference Krassen H, Schwarze A, Friedrich B, Ataka K, Lenz O, Heberle J (2009) Photosynthetic hydrogen production by a hybrid complex of photosystem I and [NiFe]-hydrogenase. ACS Nano 3(12):4055–4061 Krassen H, Schwarze A, Friedrich B, Ataka K, Lenz O, Heberle J (2009) Photosynthetic hydrogen production by a hybrid complex of photosystem I and [NiFe]-hydrogenase. ACS Nano 3(12):4055–4061
113.
go back to reference Lubner CE, Knörzer P, Silva PJ, Vincent KA, Happe T, Bryant DA, Golbeck JH (2010) Wiring an [FeFe]-hydrogenase with photosystem I for light-induced hydrogen production. Biochemistry 49(48):10264–10266 Lubner CE, Knörzer P, Silva PJ, Vincent KA, Happe T, Bryant DA, Golbeck JH (2010) Wiring an [FeFe]-hydrogenase with photosystem I for light-induced hydrogen production. Biochemistry 49(48):10264–10266
114.
go back to reference Lubner CE, Applegate AM, Knörzer P, Ganago A, Bryant DA, Happe T, Golbeck JH (2011) Solar hydrogen-producing bionanodevice outperforms natural photosynthesis. Proc Natl Acad Sci U S A 108(52):20988–20991 Lubner CE, Applegate AM, Knörzer P, Ganago A, Bryant DA, Happe T, Golbeck JH (2011) Solar hydrogen-producing bionanodevice outperforms natural photosynthesis. Proc Natl Acad Sci U S A 108(52):20988–20991
115.
go back to reference Adam D, Bösche L, Castañeda-Losada L, Winkler M, Apfel UP, Happe T (2017) Sunlight-dependent hydrogen production by photosensitizer/hydrogenase systems. Chemsuschem 10(5):894–902 Adam D, Bösche L, Castañeda-Losada L, Winkler M, Apfel UP, Happe T (2017) Sunlight-dependent hydrogen production by photosensitizer/hydrogenase systems. Chemsuschem 10(5):894–902
116.
go back to reference Warnan J, Willkomm J, Ng JN, Godin R, Prantl S, Durrant JR, Reisner E (2017) Solar H 2 evolution in water with modified diketopyrrolopyrrole dyes immobilised on molecular Co and Ni catalyst-TiO 2 hybrids. Chem Sci 8(4):3070–3079 Warnan J, Willkomm J, Ng JN, Godin R, Prantl S, Durrant JR, Reisner E (2017) Solar H 2 evolution in water with modified diketopyrrolopyrrole dyes immobilised on molecular Co and Ni catalyst-TiO 2 hybrids. Chem Sci 8(4):3070–3079
117.
go back to reference Hutton GA, Reuillard B, Martindale BC, Caputo CA, Lockwood CW, Butt JN, Reisner E (2016) Carbon dots as versatile photosensitizers for solar-driven catalysis with redox enzymes. J Am Chem Soc 138(51):16722–16730 Hutton GA, Reuillard B, Martindale BC, Caputo CA, Lockwood CW, Butt JN, Reisner E (2016) Carbon dots as versatile photosensitizers for solar-driven catalysis with redox enzymes. J Am Chem Soc 138(51):16722–16730
118.
go back to reference Lee CY, Park HS, Fontecilla-Camps JC, Reisner E (2016) Photoelectrochemical H 2 evolution with a hydrogenase immobilized on a TiO 2-protected silicon electrode. Angew Chem Int Ed Engl 55(20):5971–5974 Lee CY, Park HS, Fontecilla-Camps JC, Reisner E (2016) Photoelectrochemical H 2 evolution with a hydrogenase immobilized on a TiO 2-protected silicon electrode. Angew Chem Int Ed Engl 55(20):5971–5974
119.
go back to reference Leung JJ, Warnan J, Nam DH, Zhang JZ, Willkomm J, Reisner E (2017) Photoelectrocatalytic H 2 evolution in water with molecular catalysts immobilised on p-Si via a stabilising mesoporous TiO 2 interlayer. Chem Sci 8(7):5172–5180 Leung JJ, Warnan J, Nam DH, Zhang JZ, Willkomm J, Reisner E (2017) Photoelectrocatalytic H 2 evolution in water with molecular catalysts immobilised on p-Si via a stabilising mesoporous TiO 2 interlayer. Chem Sci 8(7):5172–5180
Metadata
Title
Alternative biologische und biotechnologische Verfahren zur Wasserstoffherstellung
Authors
Christina Marx
Thomas Happe
Copyright Year
2020
Publisher
Springer Berlin Heidelberg
DOI
https://doi.org/10.1007/978-3-662-60649-0_4

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