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Crop Physiology

The Long-Term Changes in Midday Photoinhibition in Rice (Oryza sativa L.) Growing under Fluctuating Soil Water Conditions

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Pages 287-294 | Received 04 Dec 2012, Accepted 18 Apr 2013, Published online: 03 Dec 2015

  • Bartoli, C.G., Gomez, F., Gergoff, G., Guiamet, J.J. and Puntarulo, S. 2005. Up-regulation of the mitochondrial alternative oxidase pathway enhances photosynthetic electron transport under drought conditions. J. Exp. Bot. 56: 1269-1276.
  • Biehler, K. and Fock, H. 1996. Evidence for the contribution of Mehler-peroxidase reaction in dissipating excess electrons in drought-stressed wheat. Plant Physiol. 112: 265-272.
  • Chaves, M.M., Flexas, J. and Pinherio, C. 2009. Photosynthesis under drought and salt stress: regulation mechanisms from whole plant to cell. Ann. Bot. 103: 551-560.
  • Chen, Y., Murchie, E.H., Hubbart, S., Horton, P. and Peng, S. 2003. Effects of season-dependent irradiance levels and nitrogendeficiency on photosynthesis and photoinhibition in field-grown rice (Oryza sativa). Physiol. Plant. 117: 343-351.
  • Conroy, J.P., Virgona, J.M., Smillie, R.M. and Barlow, E.W. 1988. Influence of drought acclimation and CO2 enrichment on osmotic adjustment and chlorophyll a fluorescence of sunflower during drought. Plant Physiol. 86: 1108-1115.
  • Golding, A.J. and Johnson, G.N. 2003. Down-regulation of linear and activation of cyclic electron transport during drought. Planta 218: 107-114.
  • Hikosaka, K., Kato, M.C. and Hirose, T. 2004. Photosynthetic rates and partitioning of absorbed light energy in photoinhibited leaves. Physiol. Plant. 121: 699-708.
  • Horton, P. and Ruban, A. 2005. Molecular design of the photosystem II light-harvesting antenna: photosynthesis and photoprotection. J. Exp. Bot. 56: 365-373.
  • Iseki, K., Homma, K., Shiraiwa, T., Jongdee, B. and Mekwatanakarn, P. 2013. Genotypic variation of photosystem II photoinhibition and energy partitioning in relation to photosynthetic adaptability to mild soil water deficiency of rice cultivation in northeast Thailand. Field Crops Res. 144: 154-161.
  • Jiao, D. and Ji, B. 2001. Photoinhibition in indica and japonica subspecies of rice (Oryza sativa) and their reciprocal F1 hybrids. Aust. J. Plant Physiol. 28: 299-306.
  • Kato, M.C., Hikosaka, K., Hirotsu, N., Makino, A. and Hirose, T. 2003. The excess light energy that is neither utilized in photosynthesis nor dissipated by photoprotective mechanisms determines the rate of photoinactivation in photosystem II. Plant Cell Physiol. 44: 318-325.
  • Keren, N. and Krieger-Liszkay, A. 2011. Photoinhibition: molecular mechanisms and physiological significance. Physiol. Plant. 142: 1-5.
  • Kohzuma, K., Cruz, J.A., Akashi, K., Hoshiyasu, S., Nakajima Munekage, Y., Yokota, A. and Kramer, D.M. 2009. The long-term responses of the photosynthetic proton circuit to drought. Plant Cell Environ. 32: 209-219.
  • Kumagai, E., Araki, T. and Kubota, F. 2007. Effects of nitrogen supply restriction on gas exchange and photosystem 2 function in flag leaves of a traditional low-yield cultivar and a recently improved high-yield cultivar of rice (Oryza sativa L.). Photosynthetica 45: 489-495.
  • Kumagai, E., Araki, T. and Kubota, F. 2009. Characteristics of gas exchange and chlorophyll fluorescence during senescence of flag leaf in different rice (Oryza sativa L.) cultivars grown under nitrogen-deficient condition. Plant Prod. Sci. 12: 285-292.
  • Kumagai, E., Araki, T. and Ueno, O. 2010. Comparison of susceptibility to photoinhibition and energy partitioning of absorbed light in photosystem II in flag leaves of two rice (Oryza sativa L.) cultivars that differ in their responses to nitrogendeficiency. Plant Prod. Sci. 13: 11-20.
  • Miyake, C., Amako, K., Shiraishi, N. and Sugimoto, T. 2009. Acclimation of tobacco leaves to high light intensity drives the plastoquinone oxidation system-relationship among the fraction of open PSII centers, non-photochemical quenching of Chl fluorescence and the maximum quantum yield of PSII in the dark. Plant Cell Physiol. 50: 730-743.
  • Murata, N., Takahashi, S., Nishiyama, Y. and Allakhverdiev, S.I. 2007. Photoinhibition of photosystem II under environmental stress. Biochim. Bhiphys. Acta 1767: 414-421.
  • Murchie, E.H., Chen, Y.-Z., Hubbart, S., Peng, S. and Horton, P. 1999. Interactions between senescence and leaf orientation determine in situ patterns of photosynthesis and photoinhibition in field-grown rice. Plant Physiol. 119: 553-564.
  • Oelze, M.-L., Kandlbinder, A. and Dietz, K.-J. 2008. Redox regulation and overreduction control in the photosynthesizing cell: complexity in redox regulatory networks. Biochim. Biophys. Acta 1780: 1261-1272.
  • Raven, J. 2011. The cost of photoinhibition. Physiol. Plant. 142: 87-104.
  • Topp, G.C., Davis, J.L. and Annan, A.P. 1980. Electromagnetic determination of soil water content: measurements in coaxial transmission lines. Water Resour. Res. 16: 574-582.
  • Walters R.G. 2005. Towards an understanding of photosynthetic acclimation. J. Exp. Bot. 56: 435-447.
  • Wang, Q.A., Lu, C.M. and Zhang, Q.D. 2005. Midday photoinhibition of two newly developed super-rice hybrids. Photosynthetica 43: 277-281.
  • Werner, C., Ryel, R.J., Correia, O. and Beyschlag, W. 2001. Effects of photoinhibition on whole-plant carbon gain assessed with a photosynthesis model. Plant Cell Environ. 24: 27-40.
  • Wingler, A., Quick, W.P., Bungard, R.A., Bailey, K.J., Lea, P.J. and Leegood, R.C. 1999. The role of photorespiration during drought stress: an analysis utilizing barley mutants with reduced activities of photorespiratory enzymes. Plant Cell Physiol. 22: 361-373.