Composition, phosphorylation and dynamic organization of photosynthetic protein complexes in plant thylakoid membrane.


Journal

Photochemical & photobiological sciences : Official journal of the European Photochemistry Association and the European Society for Photobiology
ISSN: 1474-9092
Titre abrégé: Photochem Photobiol Sci
Pays: England
ID NLM: 101124451

Informations de publication

Date de publication:
20 May 2020
Historique:
pubmed: 17 4 2020
medline: 2 1 2021
entrez: 17 4 2020
Statut: ppublish

Résumé

The photosystems (PS), catalyzing the photosynthetic reactions of higher plants, are unevenly distributed in the thylakoid membrane: PSII, together with its light harvesting complex (LHC)II, is enriched in the appressed grana stacks, while PSI-LHCI resides in the non-appressed stroma thylakoids, which wind around the grana stacks. The two photosystems interact in a third membrane domain, the grana margins, which connect the grana and stroma thylakoids and allow the loosely bound LHCII to serve as an additional antenna for PSI. The light harvesting is balanced by reversible phosphorylation of LHCII proteins. Nevertheless, light energy also damages PSII and the repair process is regulated by reversible phosphorylation of PSII core proteins. Here, we discuss the detailed composition and organization of PSII-LHCII and PSI-LHCI (super)complexes in the thylakoid membrane of angiosperm chloroplasts and address the role of thylakoid protein phosphorylation in dynamics of the entire protein complex network of the photosynthetic membrane. Finally, we scrutinize the phosphorylation-dependent dynamics of the protein complexes in context of thylakoid ultrastructure and present a model on the reorganization of the entire thylakoid network in response to changes in thylakoid protein phosphorylation.

Identifiants

pubmed: 32297616
doi: 10.1039/d0pp00025f
pii: 10.1039/d0pp00025f
doi:

Substances chimiques

Photosystem I Protein Complex 0
Photosystem II Protein Complex 0

Types de publication

Journal Article Review

Langues

eng

Sous-ensembles de citation

IM

Pagination

604-619

Références

L. A. Staehelin, Chloroplast structure: from chlorophyll granules to supra-molecular architecture of thylakoid membranes, Photosynth. Res., 2003, 76, 185–196.
L. Mustárdy and G. Garab, Granum revisited. A three-dimensional model –where things fall into place, Trends Plant Sci., 2003, 8, 117–122.
B. Daum, D. Nicastro, J. Austin, J. R. McIntosh and W. Kühlbrandt, Arrangement of Photosystem II and ATP Synthase in Chloroplast Membranes of Spinach and Pea, Plant Cell, 2010, 22, 1299–1312.
pubmed: 20388855 pmcid: 2879734 doi: 10.1105/tpc.109.071431
H. Kirchhoff, C. Hall, M. Wood, M. Herbstová, O. Tsabari, R. Nevo, D. Charuvi, E. Shimoni and Z. Reich, Dynamic control of protein diffusion within the granal thylakoid lumen, Proc. Natl. Acad. Sci. U. S. A., 2011, 108, 20248–20253.
P.-Å. Albertsson, A quantitative model of the domain structure of the photosynthetic membrane, Trends Plant Sci., 2001, 6, 349–354.
J. M. Anderson, P. Horton, E.-H. Kim and W. S. Chow, Towards elucidation of dynamic structural changes of plant thylakoid architecture, Philos. Trans. R. Soc., B, 2012, 367, 3515–3524.
doi: 10.1098/rstb.2012.0373
D. J. Murphy, The molecular organisation of the photosyn-thetic membranes of higher plants, Biochim. Biophys. Acta, Rev. Biomembr., 1986, 864, 33–94.
J. P. Dekker and E. J. Boekema, Supramolecular organization of thylakoid membrane proteins in green plants, Biochim. Biophys. Acta, Bioenerg., 2005, 1706, 12–39.
R. Kouřil, G. T. Oostergetel and E. J. Boekema, Fine structure of granal thylakoid membrane organization using cryo electron tomography, Biochim. Biophys. Acta, Bioenerg., 2011, 1807, 368–374.
U. Armbruster, M. Labs, M. Pribil, S. Viola, W. Xu, M. Scharfenberg, A. P. Hertle, U. Rojahn, P. E. Jensen, F. Rappaport, P. Joliot, P. Dörmann, G. Wanner and D. Leister, Arabidopsis CURVATURE THYLAKOID1 Proteins Modify Thylakoid Architecture by Inducing Membrane Curvature, Plant Cell, 2013, 25, 2661–2678.
pubmed: 23839788 pmcid: 3753390 doi: 10.1105/tpc.113.113118
R. Danielsson, P.-Å. Albertsson, F. Mamedov and S. Styring, Quantification of photosystem I and II in different parts of the thylakoid membrane from spinach, Biochim. Biophys. Acta, Bioenerg., 2004, 1608, 53–61.
S. Puthiyaveetil, O. Tsabari, T. Lowry, S. Lenhert, R. R. Lewis, Z. Reich and H. Kirchhoff, Compartmentalization of the protein repair machinery in photosynthetic membranes, Proc. Natl. Acad. Sci. U. S. A., 2014, 111, 15839–15844.
pubmed: 25331882 pmcid: 4226077 doi: 10.1073/pnas.1413739111
H. Koochak, S. Puthiyaveetil, D. L. Mullendore, M. Li and H. Kirchhoff, The structural and functional domains of plant thylakoid membranes, Plant J., 2019, 100, 213.
doi: 10.1111/tpj.14530
A. Trotta, A. A. Bajwa, I. Mancini, V. Paakkarinen, M. Pribil and E.-M. Aro, The role of phosphorylation dynamics of CURVATURE THYLAKOID 1B in plant thylakoid membranes, Plant Physiol., 2019, 181, 1615–1631.
pubmed: 31615849 pmcid: 6878015 doi: 10.1104/pp.19.00942
P.-O. Arvidsson and C. Sundby, A model for the topology of the chloroplast thylakoid membrane, Funct. Plant Biol., 1999, 26, 687–694.
doi: 10.1071/PP99072
E. Shimoni, O. Rav-Hon, I. Ohad, V. Brumfeld and Z. Reich, Three-Dimensional Organization of Higher-Plant Chloroplast Thylakoid Membranes Revealed by Electron Tomography, Plant Cell, 2005, 17, 2580–2586.
pubmed: 16055630 pmcid: 1197436 doi: 10.1105/tpc.105.035030
D. J. Paolillo, The Three-Dimensional Arrangement of Intergranal Lamellae in Chloroplasts, J. Cell Sci., 1970, 6, 243–253.
pubmed: 5417695 pmcid: 5417695
J. Brangeon and L. Mustardy, Ontogenetic assembly of intra-chloroplastic lamellae viewed in 3-dimension, Biol. Cell, 1979, 36, 71–80.
A. V. Ruban and M. P. Johnson, Visualizing the dynamic structure of the plant photosynthetic membrane, Nat. Plants, 2015, 1, 15161.
pubmed: 27251532 doi: 10.1038/nplants.2015.161 pmcid: 27251532
Y. Bussi, E. Shimoni, A. Weiner, R. Kapon, D. Charuvi, R. Nevo, E. Efrati and Z. Reich, Fundamental helical geometry consolidates the plant photosynthetic membrane, Proc. Natl. Acad. Sci. U. S. A., 2019, 116, 22366–22375.
pubmed: 31611387 pmcid: 6825288 doi: 10.1073/pnas.1905994116
L. Mustárdy, K. Buttle, G. Steinbach and G. Garab, The Three-Dimensional Network of the Thylakoid Membranes in Plants: Quasihelical Model of the Granum-Stroma Assembly, Plant Cell, 2008, 20, 2552–2557.
pubmed: 18952780 pmcid: 2590735 doi: 10.1105/tpc.108.059147
J. R. Austin and L. A. Staehelin, Three-Dimensional Architecture of Grana and Stroma Thylakoids of Higher Plants as Determined by Electron Tomography, Plant Physiol., 2011, 155, 1601–1611.
pubmed: 21224341 pmcid: 3091084 doi: 10.1104/pp.110.170647
W. S. Chow, E.-H. Kim, P. Horton and J. M. Anderson, Granal stacking of thylakoid membranes in higher plant chloroplasts: the physicochemical forces at work and the functional consequences that ensue, Photochem. Photobiol. Sci., 2005, 4, 1081.
pubmed: 16307126 doi: 10.1039/b507310n pmcid: 16307126
J. Andersson, M. Wentworth, R. Walters, C. Howard, A. Ruban, P. Horton and S. Jansson, Absence of the Lhcb1 and Lhcb2 proteins of the light-harvesting complex of photosystem II –effects on photosynthesis, grana stacking and fitness, Plant J., 2003, 35, 350–361.
pubmed: 12887586 doi: 10.1046/j.1365-313X.2003.01811.x pmcid: 12887586
D. J. Simpson, Freeze-fracture studies on barley plastid membranes. III. Location of the light-harvesting chlorophyll-protein, Carlsberg Res. Commun., 1979, 44, 305.
doi: 10.1007/BF02906493
N. Murata, Control of excitation transfer in photosynthesis. II. Magnesium ion-dependent distribution of excitation energy between two pigment systems in spinach chloroplasts, Biochim. Biophys. Acta, Bioenerg., 1969, 189, 171–181.
doi: 10.1016/0005-2728(69)90045-0
J. Barber, An explanation for the relationship between salt-induced thylakoid stacking and the chlorophyll fluorescence changes associated with changes in spillover of energy from photosystem II to photosystem I, FEBS Lett., 1980, 118, 1–10.
doi: 10.1016/0014-5793(80)81207-5
J. Standfuss, A. C. T. van Scheltinga, M. Lamborghini and W. Kühlbrandt, Mechanisms of photoprotection and non-photochemical quenching in pea light-harvesting complex at 2.5 Å resolution, EMBO J., 2005, 24, 919–928.
pubmed: 15719016 pmcid: 554132 doi: 10.1038/sj.emboj.7600585
B. Andersson and J. M. Anderson, Lateral heterogeneity in the distribution of chlorophyll-protein complexes of the thylakoid membranes of spinach chloroplasts, Biochim. Biophys. Acta, Bioenerg., 1980, 593, 427–440.
doi: 10.1016/0005-2728(80)90078-X
H. Kirchhoff, I. Tremmel, W. Haase and U. Kubitscheck, Supramolecular Photosystem II Organization in Grana Thylakoid Membranes: Evidence for a Structured Arrangement, Biochemistry, 2004, 43, 9204–9213.
pubmed: 15248778 doi: 10.1021/bi0494626 pmcid: 15248778
R. Nevo, D. Charuvi, O. Tsabari and Z. Reich, Composition, architecture and dynamics of the photosynthetic apparatus in higher plants, Plant J., 2012, 70, 157–176.
pubmed: 22449050 doi: 10.1111/j.1365-313X.2011.04876.x pmcid: 22449050
J. M. Anderson, The role of chlorophyll-protein complexes in the function and structure of chloroplast thylakoids, Mol. Cell. Biochem., 1982, 46, 161–172.
pubmed: 6750355 doi: 10.1007/BF00239665 pmcid: 6750355
P.-Å. Albertsson, E. Andreasson, P. Svensson and S.-G. Yu, Localization of cytochrome f in the thylakoid membrane: evidence for multiple domains, Biochim. Biophys. Acta, Bioenerg., 1991, 1098, 90–94.
doi: 10.1016/0005-2728(91)90012-D
O. Vallon, L. Bulte, P. Dainese, J. Olive, R. Bassi and F. A. Wollman, Lateral redistribution of cytochrome b6/f complexes along thylakoid membranes upon state transitions, Proc. Natl. Acad. Sci. U. S. A., 1991, 88, 8262–8266.
pubmed: 1896476 pmcid: 52487 doi: 10.1073/pnas.88.18.8262
L. Wollenberger, H. Stefansson, S.-G. Yu and P.-Å. Albertsson, Isolation and characterization of vesicles originating from the chloroplast grana margins, Biochim. Biophys. Acta, Bioenerg., 1994, 1184, 93–102.
doi: 10.1016/0005-2728(94)90158-9
R. Danielsson and P.-Å. Albertsson, Fragmentation and separation analysis of the photosynthetic membrane from spinach, Biochim. Biophys. Acta, Bioenerg., 2009, 1787, 25–36.
doi: 10.1016/j.bbabio.2008.10.002
S. Järvi, M. Suorsa, V. Paakkarinen and E.-M. Aro, Optimized native gel systems for separation of thylakoid protein complexes: novel super- and mega-complexes, Biochem. J., 2011, 439, 207–214.
pubmed: 21707535 doi: 10.1042/BJ20102155 pmcid: 21707535
M. Suorsa, M. Rantala, R. Danielsson, S. Järvi, V. Paakkarinen, W. P. Schröder, S. Styring, F. Mamedov and E.-M. Aro, Dark-adapted spinach thylakoid protein heterogeneity offers insights into the photosystem II repair cycle, Biochim. Biophys. Acta, Bioenerg., 2014, 1837, 1463–1471.
doi: 10.1016/j.bbabio.2013.11.014
S. Rantala and M. Tikkanen, Phosphorylation-induced lateral rearrangements of thylakoid protein complexes upon light acclimation, Plant Direct, 2018, 2, 1–12.
doi: 10.1002/pld3.39
Z. Liu, H. Yan, K. Wang, T. Kuang, J. Zhang, L. Gui, X. An and W. Chang, Crystal structure of spinach major light- harvesting complex at 2.72 Å resolution, Nature, 2004, 428, 287–292.
pubmed: 15029188 doi: 10.1038/nature02373 pmcid: 15029188
L. S. van Bezouwen, S. Caffarri, R. S. Kale, R. Kouřil, A.-M. W. H. Thunnissen, G. T. Oostergetel and E. J. Boekema, Subunit and chlorophyll organization of the plant photosystem II supercomplex, Nat. Plants, 2017, 3, 17080.
pubmed: 28604725 doi: 10.1038/nplants.2017.80 pmcid: 28604725
P. Galka, S. Santabarbara, T. T. H. Khuong, H. Degand, P. Morsomme, R. C. Jennings, E. J. Boekema and S. Caffarri, Functional Analyses of the Plant Photosystem I–Light-Harvesting Complex II Supercomplex Reveal That Light-Harvesting Complex II Loosely Bound to Photosystem II Is a Very Efficient Antenna for Photosystem I in State II, Plant Cell, 2012, 24, 2963–2978.
pubmed: 22822202 pmcid: 3426126 doi: 10.1105/tpc.112.100339
A. Crepin and S. Caffarri, Functions and Evolution of Lhcb Isoforms Composing LHCII, the Major Light Harvesting Complex of Photosystem II of Green Eukaryotic Organisms, Curr. Protein Pept. Sci., 2018, 19, 699–713.
pubmed: 29473498 doi: 10.2174/1389203719666180222101534 pmcid: 29473498
S. Jansson, A guide to the Lhc genes and their relatives in Arabidopsis, Trends Plant Sci., 1999, 4, 236–240.
pubmed: 10366881 doi: 10.1016/S1360-1385(99)01419-3 pmcid: 10366881
S. Grebe, A. Trotta, A. A. Bajwa, M. Suorsa, P. J. Gollan, S. Jansson, M. Tikkanen and E.-M. Aro, The unique photosynthetic apparatus of Pinaceae: analysis of photosynthetic complexes in Picea abies, J. Exp. Bot., 2019, 70, 3211–3225.
pubmed: 30938447 pmcid: 6598058 doi: 10.1093/jxb/erz127
X. Su, J. Ma, X. Wei, P. Cao, D. Zhu, W. Chang, Z. Liu, X. Zhang and M. Li, Structure and assembly mechanism of plant C2S2M2-type PSII-LHCII supercomplex, Science, 2017, 357, 815–820.
pubmed: 28839073 doi: 10.1126/science.aan0327 pmcid: 28839073
O. Nanba and K. Satoh, Isolation of a photosystem II reaction center consisting of D-1 and D-2 polypeptides and cytochrome b-559, Proc. Natl. Acad. Sci. U. S. A., 1987, 84, 109–112.
pubmed: 16593792 pmcid: 304151 doi: 10.1073/pnas.84.1.109
A. N. Webber, L. Packman, D. J. Chapman, J. Barber and J. C. Gray, A fifth chloroplast-encoded polypeptide is present in the photosystem II reaction centre complex, FEBS Lett., 1989, 242, 259–262.
doi: 10.1016/0014-5793(89)80481-8
B. Lundin, M. Hansson, B. Schoefs, A. V. Vener and C. Spetea, The Arabidopsis PsbO2 protein regulates dephosphorylation and turnover of the photosystem II reaction centre D1 protein, Plant J. Cell Mol. Biol., 2007, 49, 528–539.
doi: 10.1111/j.1365-313X.2006.02976.x
X. Wei, X. Su, P. Cao, X. Liu, W. Chang, M. Li, X. Zhang and Z. Liu, Structure of spinach photosystem II–LHCII supercomplex at 3.2 Å resolution, Nature, 2016, 534, 69–74.
pubmed: 27251276 doi: 10.1038/nature18020 pmcid: 27251276
Y.-E. Chen, S. Yuan, L. Lezhneva, J. Meurer, S. Schwenkert, F. Mamedov and W. P. Schröder, The Low Molecular Mass Photosystem II Protein PsbTn Is Important for Light Acclimation, Plant Physiol., 2019, 179, 1739–1753.
pubmed: 30538167 doi: 10.1104/pp.18.01251 pmcid: 30538167
M. Plöchinger, S. Schwenkert, L. von Sydow, W. P. Schröder and J. Meurer, Functional Update of the Auxiliary Proteins PsbW, PsbY, HCF136, PsbN, TerC and ALB3 in Maintenance and Assembly of PSII, Front. Plant Sci., 2016, 7, 423.
pubmed: 27092151 pmcid: 4823308 doi: 10.3389/fpls.2016.00423
K. Sznee, J. P. Dekker, R. T. Dame, H. van Roon, G. J. L. Wuite and R. N. Frese, Jumping Mode Atomic Force Microscopy on Grana Membranes from Spinach, J. Biol. Chem., 2011, 286, 39164–39171.
pubmed: 21911498 pmcid: 3234741 doi: 10.1074/jbc.M111.284844
M. Grieco, M. Suorsa, A. Jajoo, M. Tikkanen and E.-M. Aro, Light-harvesting II antenna trimers connect energetically the entire photosynthetic machinery— including both photosystems II and I, Biochim. Biophys. Acta, Bioenerg., 2015, 1847, 607–619.
doi: 10.1016/j.bbabio.2015.03.004
R. Kouřil, L. Nosek, J. Bartoš, E. J. Boekema and P. Ilík, Evolutionary loss of light-harvesting proteins Lhcb6 and Lhcb3 in major land plant groups –break-up of current dogma, New Phytol., 2016, 210, 808–814.
pubmed: 27001142 doi: 10.1111/nph.13947 pmcid: 27001142
M. M. Koskela, A. Brünje, A. Ivanauskaite, L. S. Lopez, D. Schneider, R. A. DeTar, H.-H. Kunz, I. Finkemeier and P. Mulo, Comparative analysis of thylakoid protein complexes in state transition mutants nsi and stn7: focus on PSI and LHCII, Photosynth. Res., 2020, DOI: 10.1007/ s11120-020-00711-4.
H. Kirchhoff, W. Haase, S. Wegner, R. Danielsson, R. Ackermann and P.-A. Albertsson, Low-Light-Induced Formation of Semicrystalline Photosystem II Arrays in Higher Plant Chloroplasts, Biochemistry, 2007, 46, 11169–11176.
pubmed: 17845010 doi: 10.1021/bi700748y pmcid: 17845010
R. Kouřil, J. P. Dekker and E. J. Boekema, Supramolecular organization of photosystem II in green plants, Biochim. Biophys. Acta, Bioenerg., 2012, 1817, 2–12.
doi: 10.1016/j.bbabio.2011.05.024
P. Albanese, J. Nield, J. A. M. Tabares, A. Chiodoni, M. Manfredi, F. Gosetti, E. Marengo, G. Saracco, J. Barber and C. Pagliano, Isolation of novel PSII-LHCII megacomplexes from pea plants characterized by a combination of proteomics and electron microscopy, Photosynth. Res., 2016, 130, 19–31.
pubmed: 26749480 doi: 10.1007/s11120-016-0216-3 pmcid: 26749480
T. K. Goral, M. P. Johnson, C. D. P. Duffy, A. P. R. Brain, A. V. Ruban and C. W. Mullineaux, Light-harvesting antenna composition controls the macrostructure and dynamics of thylakoid membranes in Arabidopsis, Plant J., 2012, 69, 289–301.
pubmed: 21919982 doi: 10.1111/j.1365-313X.2011.04790.x pmcid: 21919982
N. M. Tsvetkova, A. P. R. Brain and P. J. Quinn, Structural characteristics of thylakoid membranes of Arabidopsis mutants deficient in lipid fatty acid desaturation, Biochim. Biophys. Acta, Biomembr., 1994, 1192, 263–271.
doi: 10.1016/0005-2736(94)90127-9
S. Tietz, S. Puthiyaveetil, H. M. Enlow, R. Yarbrough, M. Wood, D. A. Semchonok, T. Lowry, Z. Li, P. Jahns, E. J. Boekema, S. Lenhert, K. K. Niyogi and H. Kirchhoff, Functional Implications of Photosystem II Crystal Formation in Photosynthetic Membranes, J. Biol. Chem., 2015, 290, 14091–14106.
pubmed: 25897076 pmcid: 4447980 doi: 10.1074/jbc.M114.619841
S. Kereïche, A. Z. Kiss, R. Kouřil, E. J. Boekema and P. Horton, The PsbS protein controls the macro-organisation of photosystem II complexes in the grana membranes of higher plant chloroplasts, FEBS Lett., 2010, 584, 759–764.
pubmed: 20035752 doi: 10.1016/j.febslet.2009.12.031 pmcid: 20035752
P. Horton, A. V. Ruban, D. Rees, A. A. Pascal, G. Noctor and A. J. Young, Control of the light-harvesting function of chloroplast membranes by aggregation of the LHCII chlorophyll-protein complex, FEBS Lett., 1991, 292, 1–4.
pubmed: 1959588 doi: 10.1016/0014-5793(91)80819-O pmcid: 1959588
P. Horton, M. Wentworth and A. Ruban, Control of the light harvesting function of chloroplast membranes: The LHCII-aggregation model for non-photochemical quenching, FEBS Lett., 2005, 579, 4201–4206.
pubmed: 16051219 doi: 10.1016/j.febslet.2005.07.003 pmcid: 16051219
A. R. Holzwarth, Y. Miloslavina, M. Nilkens and P. Jahns, Identification of two quenching sites active in the regulation of photosynthetic light-harvesting studied by time-resolved fluorescence, Chem. Phys. Lett., 2009, 483, 262–267.
doi: 10.1016/j.cplett.2009.10.085
N. Betterle, M. Ballottari, S. Zorzan, S. de Bianchi, S. Cazzaniga, L. Dall’Osto, T. Morosinotto and R. Bassi, Light-induced Dissociation of an Antenna Hetero-oligomer Is Needed for Non-photochemical Quenching Induction, J. Biol. Chem., 2009, 284, 15255–15266.
pubmed: 19307183 pmcid: 2685706 doi: 10.1074/jbc.M808625200
Y. Mazor, A. Borovikova, I. Caspy and N. Nelson, Structure of the plant photosystem I supercomplex at 2.6 Å resolution, Nat. Plants, 2017, 3, 17014.
pubmed: 28248295 doi: 10.1038/nplants.2017.14 pmcid: 28248295
S. Caffarri, T. Tibiletti, R. Jennings and S. Santabarbara, A comparison between plant photosystem I and photosystem II architecture and functioning, Curr. Protein Pept. Sci., 2014, 15, 296–331.
pubmed: 24678674 pmcid: 4030627 doi: 10.2174/1389203715666140327102218
I. Caspy and N. Nelson, Structure of the plant photosystem I, Biochem. Soc. Trans., 2018, 46, 285–294.
pubmed: 29487228 doi: 10.1042/BST20170299 pmcid: 29487228
P. E. Jensen, R. Bassi, E. J. Boekema, J. P. Dekker, S. Jansson, D. Leister, C. Robinson and H. V. Scheller, Structure, function and regulation of plant photosystem I, Biochim. Biophys. Acta, Bioenerg., 2007, 1767, 335–352.
doi: 10.1016/j.bbabio.2007.03.004
E. J. Boekema, P. E. Jensen, E. Schlodder, J. F. L. van Breemen, H. van Roon, H. V. Scheller and J. P. Dekker, Green Plant Photosystem I Binds Light-Harvesting Complex I on One Side of the Complex
pubmed: 11170425 doi: 10.1021/bi0015358 pmcid: 11170425
M. Ballottari, C. Govoni, S. Caffarri and T. Morosinotto, Stoichiometry of LHCI antenna polypeptides and characterization of gap and linker pigments in higher plants Photosystem I, Eur. J. Biochem., 2004, 271, 4659–4665.
pubmed: 15606753 doi: 10.1111/j.1432-1033.2004.04426.x pmcid: 15606753
E. Wientjes and R. Croce, The light-harvesting complexes of higher-plant Photosystem I: Lhca1/4 and Lhca2/3 form two red-emitting heterodimers, Biochem. J., 2011, 433, 477–485.
pubmed: 21083539 doi: 10.1042/BJ20101538 pmcid: 21083539
A. Alboresi, C. Le Quiniou, S. K. N. Yadav, M. Scholz, A. Meneghesso, C. Gerotto, D. Simionato, M. Hippler, E. J. Boekema, R. Croce and T. Morosinotto, Conservation of core complex subunits shaped the structure and function of photosystem I in the secondary endosymbiont alga Nannochloropsis gaditana, New Phytol., 2017, 213, 714–726.
pubmed: 27620972 doi: 10.1111/nph.14156 pmcid: 27620972
S. Kereïche, R. Kouřil, G. T. Oostergetel, F. Fusetti, E. J. Boekema, A. B. Doust, C. D. van der Weij-de Wit and J. P. Dekker, Association of chlorophyll a/c2 complexes to photosystem I and photosystem II in the cryptophyte Rhodomonas CS24, Biochim. Biophys. Acta, Bioenerg., 2008, 1777, 1122–1128.
doi: 10.1016/j.bbabio.2008.04.045
B. Drop, M. Webber-Birungi, F. Fusetti, R. Kouřil, K. E. Redding, E. J. Boekema and R. Croce, Photosystem I of Chlamydomonas reinhardtii Contains Nine Light-harvesting Complexes (Lhca) Located on One Side of the Core, J. Biol. Chem., 2011, 286, 44878–44887.
pubmed: 22049081 pmcid: 22049081
A. Crepin, Z. Kučerová, A. Kosta, E. Durand and S. Caffarri, Isolation and characterization of a large photo-system I–light-harvesting complex II supercomplex with an additional Lhca1–a4 dimer in Arabidopsis, Plant J., 2019, DOI: 10.1111/tpj.14634.
E. Boekema and A. Dmitry, in Light Harvesting in Photosynthesis, 2018.
X. Pan, P. Cao, X. Su, Z. Liu and M. Li, Structural analysis and comparison of light-harvesting complexes I and II, Biochim. Biophys. Acta, Bioenerg., 2019, 148038.
M. Iwai, M. Yokono, N. Inada and J. Minagawa, Live-cell imaging of photosystem II antenna dissociation during state transitions, Proc. Natl. Acad. Sci. U. S. A., 2010, 107, 2337–2342.
pubmed: 20080575 doi: 10.1073/pnas.0908808107 pmcid: 20080575
K. N. S. Yadav, D. A. Semchonok, L. Nosek, R. Kouřil, G. Fucile, E. J. Boekema and L. A. Eichacker, Supercomplexes of plant photosystem I with cytochrome b6f, light-harvesting complex II and NDH, Biochim. Biophys. Acta, Bioenerg., 2017, 1858, 12–20.
doi: 10.1016/j.bbabio.2016.10.006
L. Peng, Y. Fukao, M. Fujiwara, T. Takami and T. Shikanai, Efficient operation of NAD(P)H dehydrogenase requires supercomplex formation with photosystem I via minor LHCI in Arabidopsis, Plant Cell, 2009, 21, 3623–3640.
pubmed: 19903870 pmcid: 2798312 doi: 10.1105/tpc.109.068791
R. Kouřil, O. Strouhal, L. Nosek, R. Lenobel, I. Chamrád, E. J. Boekema, M. Šebela and P. Ilík, Structural characterization of a plant photosystem I and NAD(P)H dehydrogenase supercomplex, Plant J., 2014, 77, 568–576.
pubmed: 24313886 doi: 10.1111/tpj.12402 pmcid: 24313886
X. Pan, J. Ma, X. Su, P. Cao, W. Chang, Z. Liu, X. Zhang and M. Li, Structure of the maize photosystem I super-complex with light-harvesting complexes I and II, Science, 2018, 360, 1109–1113.
pubmed: 29880686 doi: 10.1126/science.aat1156 pmcid: 29880686
M. Plöchinger, S. Torabi, M. Rantala, M. Tikkanen, M. Suorsa, P.-E. Jensen, E. M. Aro and J. Meurer, The Low Molecular Weight Protein PsaI Stabilizes the Light-Harvesting Complex II Docking Site of Photosystem I, Plant Physiol., 2016, 172, 450–463.
pubmed: 27406169 pmcid: 5074619 doi: 10.1104/pp.16.00647
M. Suorsa, M. Rantala, F. Mamedov, M. Lespinasse, A. Trotta, M. Grieco, E. Vuorio, M. Tikkanen, S. Järvi and E. Aro, Light acclimation involves dynamic re-organization of the pigment–protein megacomplexes in non-appressed thylakoid domains, Plant J., 2015, 84, 360–373.
pubmed: 26332430 doi: 10.1111/tpj.13004 pmcid: 26332430
M. Rantala, M. Tikkanen and E. Aro, Proteomic characterization of hierarchical megacomplex formation in Arabidopsis thylakoid membrane, Plant J., 2017, 92, 951–962.
pubmed: 28980426 doi: 10.1111/tpj.13732 pmcid: 28980426
M. Yokono, A. Takabayashi, S. Akimoto and A. Tanaka, A megacomplex composed of both photosystem reaction centres in higher plants, Nat. Commun., 2015, 6, 6675.
pubmed: 25809225 doi: 10.1038/ncomms7675 pmcid: 25809225
A. Crepin and S. Caffarri, The specific localizations of phosphorylated Lhcb1 and Lhcb2 isoforms reveal the role of Lhcb2 in the formation of the PSI-LHCII supercomplex in Arabidopsis during state transitions, Biochim. Biophys. Acta, Bioenerg., 2015, 1847, 1539–1548.
doi: 10.1016/j.bbabio.2015.09.005
P. Svensson and P.-Å. Albertsson, Preparation of highly enriched photosystem II membrane vesicles by a non-detergent method, Photosynth. Res., 1989, 20, 249–259.
pubmed: 24424437 pmcid: 24424437
S. L. Benson, P. Maheswaran, M. A. Ware, C. N. Hunter, P. Horton, S. Jansson, A. V. Ruban and M. P. Johnson, An intact light harvesting complex I antenna system is required for complete state transitions in Arabidopsis, Nat. Plants, 2015, 1, 15176.
pubmed: 27251716 doi: 10.1038/nplants.2015.176 pmcid: 27251716
J. M. Anderson, Photoregulation of the Composition, Function, and Structure of Thylakoid Membranes, Annu. Rev. Plant Physiol., 1986, 37, 93–136.
doi: 10.1146/annurev.pp.37.060186.000521
M. Khatoon, K. Inagawa, P. Pospíšil, A. Yamashita, M. Yoshioka, B. Lundin, J. Horie, N. Morita, A. Jajoo, Y. Yamamoto and Y. Yamamoto, Quality Control of Photosystem II thylakoid unstacking is necessary to avoid further damage to the D1 protein and to facilitate D1 degradation under light stress in spinach thylakoids, J. Biol. Chem., 2009, 284, 25343–25352.
pubmed: 19617353 pmcid: 2757236 doi: 10.1074/jbc.M109.007740
M. Herbstová, S. Tietz, C. Kinzel, M. V. Turkina and H. Kirchhoff, Architectural switch in plant photosynthetic membranes induced by light stress, Proc. Natl. Acad. Sci. U. S. A., 2012, 109, 20130–20135.
pubmed: 23169624 pmcid: 3523818 doi: 10.1073/pnas.1214265109
P. R. Rozak, R. M. Seiser, W. F. Wacholtz and R. R. Wise, Rapid, reversible alterations in spinach thylakoid appression upon changes in light intensity, Plant, Cell Environ., 2002, 25, 421–429.
doi: 10.1046/j.0016-8025.2001.00823.x
M. Tikkanen, M. Grieco, S. Kangasjärvi and E.-M. Aro, Thylakoid Protein Phosphorylation in Higher Plant Chloroplasts Optimizes Electron Transfer under Fluctuating Light, Plant Physiol., 2010, 152, 723–735.
pubmed: 19965965 pmcid: 2815896 doi: 10.1104/pp.109.150250
M. Suorsa, S. Järvi, M. Grieco, M. Nurmi, M. Pietrzykowska, M. Rantala, S. Kangasjärvi, V. Paakkarinen, M. Tikkanen, S. Jansson and E.-M. Aro, PROTON GRADIENT REGULATION5 Is Essential for Proper Acclimation of Arabidopsis Photosystem I to Naturally and Artificially Fluctuating Light Conditions, Plant Cell, 2012, 24, 2934–2948.
pubmed: 22822205 pmcid: 3426124 doi: 10.1105/tpc.112.097162
M. Tikkanen, M. Grieco, M. Nurmi, M. Rantala, M. Suorsa and E.-M. Aro, Regulation of the photosynthetic apparatus under fluctuating growth light, Philos. Trans. R. Soc., B, 2012, 367, 3486–3493.
doi: 10.1098/rstb.2012.0067
S. Reiland, G. Messerli, K. Baerenfaller, B. Gerrits, A. Endler, J. Grossmann, W. Gruissem and S. Baginsky, Large-Scale Arabidopsis Phosphoproteome Profiling Reveals Novel Chloroplast Kinase Substrates and Phosphorylation Networks, Plant Physiol., 2009, 150, 889–903.
pubmed: 19376835 pmcid: 2689975 doi: 10.1104/pp.109.138677
J. Bennett, Phosphorylation of chloroplast membrane polypeptides, Nature, 1977, 269, 344–346.
doi: 10.1038/269344a0
S. Bellafiore, F. Barneche, G. Peltier and J.-D. Rochaix, State transitions and light adaptation require chloroplast thylakoid protein kinase STN7, Nature, 2005, 433, 892.
pubmed: 15729347 doi: 10.1038/nature03286
A. V. Vener, P. J. M. van Kan, P. R. Rich, I. Ohad and B. Andersson, Plastoquinol at the quinol oxidation site of reduced cytochrome bf mediates signal transduction between light and protein phosphorylation: Thylakoid protein kinase deactivation by a single-turnover flash, Proc. Natl. Acad. Sci. U. S. A., 1997, 94, 1585–1590.
pubmed: 11038603 pmcid: 19835 doi: 10.1073/pnas.94.4.1585
A. Trotta, M. Suorsa, M. Rantala, B. Lundin and E.-M. Aro, Serine and threonine residues of plant STN7 kinase are differentially phosphorylated upon changing light conditions and specifically influence the activity and stability of the kinase, Plant J., 2016, 87, 484–494.
pubmed: 27214592 doi: 10.1111/tpj.13213 pmcid: 27214592
E. Rintamäki, P. Martinsuo, S. Pursiheimo and E.-M. Aro, Cooperative regulation of light-harvesting complex II phosphorylation via the plastoquinol and ferredoxinthioredoxin system in chloroplasts, Proc. Natl. Acad. Sci. U. S. A., 2000, 97, 11644–11649.
pubmed: 11005828 pmcid: 17254 doi: 10.1073/pnas.180054297
V. Bonardi, P. Pesaresi, T. Becker, E. Schleiff, R. Wagner, T. Pfannschmidt, P. Jahns and D. Leister, Photosystem II core phosphorylation and photosynthetic acclimation require two different protein kinases, Nature, 2005, 437, 1179–1182.
pubmed: 16237446 doi: 10.1038/nature04016 pmcid: 16237446
M. Tikkanen, M. Piippo, M. Suorsa, S. Sirpiö, M. Mulo, J. Vainonen, A. Vener, Y. Allahverdiyeva and E.-M. Aro, State transitions revisited—a buffering system for dynamic low light acclimation of Arabidopsis, Plant Mol. Biol., 2006, 62, 779.
pubmed: 16897465 doi: 10.1007/s11103-006-9088-9 pmcid: 16897465
M. Pribil, P. Pesaresi, A. Hertle, R. Barbato and D. Leister, Role of plastid protein phosphatase TAP38 in LHCII dephosphorylation and thylakoid electron flow, PLoS Biol., 2010, 8, e1000288.
A. Shapiguzov, B. Ingelsson, I. Samol, C. Andres, F. Kessler, J.-D. Rochaix, A. V. Vener and M. Goldschmidt-Clermont, The PPH1 phosphatase is specifically involved in LHCII dephosphorylation and state transitions in Arabidopsis, Proc. Natl. Acad. Sci. U. S. A., 2010, 107, 4782–4787.
pubmed: 20176943 pmcid: 2842063 doi: 10.1073/pnas.0913810107
M. Rantala, N. Lehtimäki, E.-M. Aro and M. Suorsa, Downregulation of TAP38/PPH1 enables LHCII hyperphosphorylation in Arabidopsis mutant lacking LHCII docking site in PSI, FEBS Lett., 2016, 590, 787–794.
pubmed: 26926011 pmcid: 5021135 doi: 10.1002/1873-3468.12117
X. Wei, J. Guo, M. Li and Z. Liu, Structural Mechanism Underlying the Specific Recognition between the Arabidopsis State-Transition Phosphatase TAP38/PPH1 and Phosphorylated Light-Harvesting Complex Protein Lhcb1, Plant Cell, 2015, 27, 1113–1127.
pubmed: 25888588 pmcid: 4558704 doi: 10.1105/tpc.15.00102
C. Leoni, M. Pietrzykowska, A. Z. Kiss, M. Suorsa, L. R. Ceci, E.-M. Aro and S. Jansson, Very rapid phosphorylation kinetics suggest a unique role for Lhcb2 during state transitions in Arabidopsis, Plant J., 2013, 76, 236–246.
pubmed: 23888908 pmcid: 4223382 doi: 10.1111/tpj.12297
M. Pietrzykowska, M. Suorsa, D. A. Semchonok, M. Tikkanen, E. J. Boekema, E.-M. Aro and S. Jansson, The Light-Harvesting Chlorophyll a/b Binding Proteins Lhcb1 and Lhcb2 Play Complementary Roles during State Transitions in Arabidopsis, Plant Cell, 2014, 26, 3646–3660.
pubmed: 25194026 pmcid: 4213150 doi: 10.1105/tpc.114.127373
P. Longoni, D. Douchi, F. Cariti, G. Fucile and M. Goldschmidt-Clermont, Phosphorylation of the Light- Transitions, Plant Physiol., 2015, 169, 2874–2883.
pubmed: 26438789 pmcid: 4677923
E. Wientjes, H. van Amerongen and R. Croce, LHCII is an antenna of both photosystems after long-term acclimation, Biochim. Biophys. Acta, Bioenerg., 2013, 1827, 420–426.
doi: 10.1016/j.bbabio.2012.12.009
M. Giovanardi, L. Pantaleoni, L. Ferroni, C. Pagliano, P. Albanese, C. Baldisserotto and S. Pancaldi, In pea stipules a functional photosynthetic electron flow occurs despite a reduced dynamicity of LHCII association with photosystems, Biochim. Biophys. Acta, Bioenerg., 2018, 1859, 1025–1038.
doi: 10.1016/j.bbabio.2018.05.013
N. R. Mekala, M. Suorsa, M. Rantala, E.-M. Aro and M. Tikkanen, Plants actively avoid state transitions upon changes in light intensity: Role of Light-Harvesting Complex II protein dephosphorylation in high light, Plant Physiol., 2015, 168, 721–734.
pubmed: 25902812 pmcid: 4453798 doi: 10.1104/pp.15.00488
P. Pesaresi, A. Hertle, M. Pribil, T. Kleine, R. Wagner, H. Strissel, A. Ihnatowicz, V. Bonardi, M. Scharfenberg, A. Schneider, T. Pfannschmidt and D. Leister, Arabidopsis STN7 Kinase provides a link between short- and long-term photosynthetic acclimation, Plant Cell, 2009, 21, 2402–2423.
pubmed: 19706797 pmcid: 2751956 doi: 10.1105/tpc.108.064964
W. H. Wood, S. F. H. Barnett, S. Flannery, C. N. Hunter and M. P. Johnson, Dynamic thylakoid stacking is regulated by LHCII phosphorylation but not its interaction with photosystem I, Plant Physiol., 2019, 180, 2152–2166.
pubmed: 31186333 pmcid: 6670114 doi: 10.1104/pp.19.00503
R. Kouřil, E. Wientjes, J. B. Bultema, R. Croce and E. J. Boekema, High-light vs. low-light: Effect of light acclimation on photosystem II composition and organization in Arabidopsis thaliana, Biochim. Biophys. Acta, Bioenerg., 2013, 1827, 411–419.
doi: 10.1016/j.bbabio.2012.12.003
B. Ingelsson and A. V. Vener, Phosphoproteomics of Arabidopsis chloroplasts reveals involvement of the STN7 kinase in phosphorylation of nucleoid protein pTAC16, FEBS Lett., 2012, 586, 1265–1271.
pubmed: 22616989 doi: 10.1016/j.febslet.2012.03.061 pmcid: 22616989
C. Spetea, A. Herdean, G. Allorent, L. Carraretto, G. Finazzi and I. Szabo, An update on the regulation of photosynthesis by thylakoid ion channels and transporters in Arabidopsis, Physiol. Plant., 2017, 161, 16–27.
pubmed: 28332210 doi: 10.1111/ppl.12568 pmcid: 28332210
M. M. Koskela, A. Brünje, A. Ivanauskaite, M. Grabsztunowicz, I. Lassowskat, U. Neumann, T. V. Dinh, J. Sindlinger, D. Schwarzer, M. Wirtz, E. Tyystjärvi, I. Finkemeier and P. Mulo, Chloroplast acetyltransferase NSI is required for state transitions in Arabidopsis thaliana, Plant Cell, 2018, 30, 1695–1709.
pubmed: 29967049 pmcid: 6139681 doi: 10.1105/tpc.18.00155
P. Albanese, S. Tamara, G. Saracco, R. A. Scheltema and C. Pagliano, How paired PSII–LHCII supercomplexes mediate the stacking of plant thylakoid membranes unveiled by structural mass-spectrometry, Nat. Commun., 2020, 11, 1–14.
doi: 10.1038/s41467-020-15184-1
B. Demmig-Adams and W. Adams, Photoprotection and other responses of plants to high light stress, Annu. Rev. Plant Physiol. Plant Mol. Biol., 1992, 43, 599–626.
doi: 10.1146/annurev.pp.43.060192.003123
E. Tyystjärvi and E. M. Aro, The rate constant of photoinhibition, measured in lincomycin-treated leaves, is directly proportional to light intensity, Proc. Natl. Acad. Sci. U. S. A., 1996, 93, 2213–2218.
pubmed: 11607639 pmcid: 39937 doi: 10.1073/pnas.93.5.2213
E.-M. Aro, I. Virgin and B. Andersson, Photoinhibition of Photosystem II. Inactivation, protein damage and turnover, Biochim. Biophys. Acta, Bioenerg., 1993, 1143, 113–134.
doi: 10.1016/0005-2728(93)90134-2
M. A. Gururani, J. Venkatesh and L. S. P. Tran, Regulation of photosynthesis during abiotic stress-induced photoinhibition, Mol. Plant, 2015, 8, 1304–1320.
pubmed: 25997389 doi: 10.1016/j.molp.2015.05.005 pmcid: 25997389
S. Järvi, M. Suorsa and E.-M. Aro, Photosystem II repair in plant chloroplasts—Regulation, assisting proteins and shared components with photosystem II biogenesis, Biochim. Biophys. Acta, Bioenerg., 2015, 1847, 900–909.
doi: 10.1016/j.bbabio.2015.01.006
Y. Yamamoto, Quality Control of Photosystem II: The mechanisms for avoidance and tolerance of light and heat stresses are closely linked to membrane fluidity of the thylakoids, Front. Plant Sci., 2016, 7, 1136.
pubmed: 27532009 pmcid: 4969305 doi: 10.3389/fpls.2016.01136
E. Baena-González, R. Barbato and E.-M. Aro, Role of phosphorylation in the repair cycle and oligomeric structure of photosystem II, Planta, 1999, 208, 196–204.
doi: 10.1007/s004250050550
M. Tikkanen, N. R. Mekala and E.-M. Aro, Photosystem II photoinhibition-repair cycle protects Photosystem I from irreversible damage, Biochim. Biophys. Acta, Bioenerg., 2014, 1837, 210–215.
doi: 10.1016/j.bbabio.2013.10.001
K. Nishimura, Y. Kato and W. Sakamoto, Essentials of Proteolytic Machineries in Chloroplasts, Mol. Plant, 2017, 10, 4–19.
pubmed: 27585878 doi: 10.1016/j.molp.2016.08.005 pmcid: 27585878
J. P. Vainonen, M. Hansson and A. V. Vener, STN8 protein kinase in Arabidopsis thaliana is specific in phosphorylation of Photosystem II core proteins, J. Biol. Chem., 2005, 280, 33679–33686.
pubmed: 16040609 doi: 10.1074/jbc.M505729200 pmcid: 16040609
I. Samol, A. Shapiguzov, B. Ingelsson, G. Fucile, M. Crèvecoeur, A. V. Vener, J.-D. Rochaix and M. Goldschmidt-Clermont, Identification of a Photosystem II phosphatase involved in light acclimation in Arabidopsis, Plant Cell, 2012, 24, 2596–2609.
pubmed: 22706287 pmcid: 3406908 doi: 10.1105/tpc.112.095703
M. Tikkanen, M. Nurmi, S. Kangasjärvi and E.-M. Aro, Core protein phosphorylation facilitates the repair of photodamaged photosystem II at high light, Biochim. Biophys. Acta, Bioenerg., 2008, 1777, 1432–1437.
doi: 10.1016/j.bbabio.2008.08.004
R. Fristedt, A. Willig, P. Granath, M. Crèvecoeur, J.-D. Rochaix and A. V. Vener, Phosphorylation of Photosystem II Controls Functional Macroscopic Folding of Photosynthetic Membranes in Arabidopsis, Plant Cell, 2009, 21, 3950–3964.
pubmed: 20028840 pmcid: 2814517 doi: 10.1105/tpc.109.069435
T. K. Goral, M. P. Johnson, A. P. R. Brain, H. Kirchhoff, A. V. Ruban and C. W. Mullineaux, Visualizing the mobility and distribution of chlorophyll proteins in higher plant thylakoid membranes: effects of photoinhibition and protein phosphorylation, Plant J., 2010, 62, 948–959.
pubmed: 20230505 pmcid: 20230505
S. Puthiyaveetil and H. Kirchhoff, A phosphorylation map of the photosystem II supercomplex C2S2M2, Front. Plant Sci., 2013, 4, 459.
pubmed: 24298276 pmcid: 3828554 doi: 10.3389/fpls.2013.00459
R. Fristedt, P. Granath and A. V. Vener, A Protein Phosphorylation Threshold for Functional Stacking of Plant Photosynthetic Membranes, PLoS One, 2010, 5, e10963.
M. Pribil, O. Sandoval-Ibáñez, W. Xu, A. Sharma, M. Labs, Q. Liu, C. Galgenmüller, T. Schneider, M. Wessels, S. Matsubara, S. Jansson, G. Wanner and D. Leister, Fine-Tuning of Photosynthesis Requires CURVATURE THYLAKOID1-Mediated Thylakoid Plasticity, Plant Physiol., 2018, 176, 2351–2364.
pubmed: 29374108 pmcid: 5841691 doi: 10.1104/pp.17.00863
Y. Yamamoto, H. Hori, S. Kai, T. Ishikawa, A. Ohnishi, N. Tsumura and N. Morita, Quality control of Photosystem II: reversible and irreversible protein aggregation decides the fate of Photosystem II under excessive illumination, Front. Plant Sci., 2013, 4, 433.
pubmed: 24194743 pmcid: 3810940 doi: 10.3389/fpls.2013.00433
Q.-B. Yu, G. Li, G. Wang, J.-C. Sun, P.-C. Wang, C. Wang, H.-L. Mi, W.-M. Ma, J. Cui, Y.-L. Cui, K. Chong, Y.-X. Li, Y.-H. Li, Z. Zhao, T.-L. Shi and Z.-N. Yang, Construction of a chloroplast protein interaction network and functional mining of photosynthetic proteins in Arabidopsis thaliana, Cell Res., 2008, 18, 1007–1019.
pubmed: 18813226 doi: 10.1038/cr.2008.286 pmcid: 18813226
R. Yokoyama, H. Yamamoto,M. Kondo, S. Takeda, K. Ifuku, Y. Fukao, Y. Kamei, M. Nishimura and T. Shikanai, Grana-Localized Proteins, RIQ1 and RIQ2, Affect the Organization of Light-Harvesting Complex II and Grana Stacking in Arabidopsis, Plant Cell, 2016, 28, 2261–2275.
pubmed: 27600538 pmcid: 5059800 doi: 10.1105/tpc.16.00296
S. Järvi, M. Rantala and E.-M. Aro, in Photosynthesis and Bioenergetics, World Scientific, 2017, pp. 243–263.

Auteurs

Marjaana Rantala (M)

Molecular Plant Biology, Department of Biochemistry, University of Turku, FI-20520, Turku, Finland.

Sanna Rantala (S)

Molecular Plant Biology, Department of Biochemistry, University of Turku, FI-20520, Turku, Finland.

Eva-Mari Aro (EM)

Molecular Plant Biology, Department of Biochemistry, University of Turku, FI-20520, Turku, Finland. evaaro@utu.fi.

Articles similaires

Animals TOR Serine-Threonine Kinases Colorectal Neoplasms Colitis Mice
Arabidopsis Arabidopsis Proteins Osmotic Pressure Cytoplasm RNA, Messenger
Genome Size Genome, Plant Magnoliopsida Evolution, Molecular Arabidopsis
Glycine max Photoperiod Ubiquitin-Protein Ligases Flowers Gene Expression Regulation, Plant

Classifications MeSH