Diurnal variations in gas exchange and chlorophyll fluorescence in rice leaves: the cause for midday depression in CO2 photosynthetic rate

Автор: Panda Debabrata

Журнал: Журнал стресс-физиологии и биохимии @jspb

Статья в выпуске: 4 т.7, 2011 года.

Бесплатный доступ

Gas exchange and chlorophyll fluorescence analysis were carried out to investigate the diurnal variations in photosynthesis in leaves of rice (Oryza sativaL.). Leaf CO2photosynthetic rate (Pn) showed a bimodal diurnal pattern and midday depression in Pn was observed at 13:00 h. Depression in Pn at midday was mostly attributed to stomatal limitation since the reduction in Pn was followed by the significant reduction in stomatal conductance (Gs). Midday depression in Pn was found to be associated with reversible inactivation of Photo-system II (PS II) reaction centers and increase of photo-inhibition in response to high intensity as evidenced by the maximum efficiency of PS II (Fv/Fm) decreased with increase of light intensity from 6:00 h to 16:00 h of a day. The minimal fluorescence (Fo) gradually increased with increasing light intensity and reached its highest value at 13:00 h and on contrary the maximal fluorescence (Fm) decreased and reached its lowest value at 13:00 h. Quantification of several chlorophyll fluorescence parameters (JIP-test) like area above the fluorescence curve between Fo and Fm, phenomenological energy fluxes like electron transport per cross section (ETo/CS), active PS II reaction center per exited cross-section (RC/CSo) and performance index (Pi) were low in early morning, increasing with time and reaching a maximum at 9:00 h subsequently decreasing and reaching a minimum value at 13.00 h. On contrary the dissipation per cross-section (Dio/CS) gradually increased with increasing light intensity and reached its highest value at 13:00 h. It is likely that PS II down-regulation and heat dissipation co-operated together to prevent the chloroplast from photo damage.

Еще

Chlorophyll fluorescence, photosynthesis, photo-system ii, photo-inhibition

Короткий адрес: https://sciup.org/14323549

IDR: 14323549

Список литературы Diurnal variations in gas exchange and chlorophyll fluorescence in rice leaves: the cause for midday depression in CO2 photosynthetic rate

  • Anderson, J.M., Park, Y.I., Chow, W.S. (1998) Unifying model for the photoinactivation of photosystem II in vivo under steady-state photosynthesis. Photosynth. Res., 56, 1-13.
  • Aro, E.M., Virgin, I., Anderson, B. (1993) Photoinhibition of photosystem II. Inactivation, protein damage and turnover. Biochimica Biophysica Acta, 1143, 113-134.
  • Demming-Adam, B., Adams, I.I.I. (1996) Photosynthesis: harvesting sunlight safely. Nature, 384, 557-560.
  • Force, L., Critchley, C., van Rensen, J.J.S. (2003) New fluorescence parameters for monitoring photosynthesis in plants. Photosynth. Res., 90, 1-19.
  • Govindachary, S., Bukhov, N.G., Joly, D., Carpentier,.(2004) Photosystem II inhibition by moderate light under low temperature in intact leaves of chilling sensitive and tolerant plants. Physiol. Planta., 121, 322-333.
  • Hirasawa, T., Hsiao, T.C. (1999) Some characteristics of reduced leaf photosynthesis at midday in maize growing in the field. Field Crop Res., 62, 53-62.
  • Hirasawa, T., Iida, Y., Ishihara, K. (1989) Dominant factor in reduction of photosynthetic rate affected by air humidity and leaf water potential in rice plants. Jap. J. of Crop Sci., 58, 383-389.
  • Huang, I.F., Zheng, J.H., Zhang Y.Y., Hu, W.H., Mao W.H., Zhou, Y.H., Yu, J.Q. (2006) Diurnal variation in gas exchange, chlorophyll fluorescence quenching and light allocation in soybean leaves: The cause for midday depression in CO2 assimilation. Sciencetia Horticuture, 110, 214-218
  • Ivanov, A.G., Hurry, V., Sane, P.V., Oquist, G., Huner, N.P.A. (2008) Reaction Centre Quenching of Excess Light Energy and Photoprotection of Photosystem II. J. of Plant Biol., 51, 85-96.
  • Joliot, P., Joliot, A. (2002) Cyclic electron transport in plant leaf. PNAS,99, 10209-10214.
  • Krause, G.H., Weis, E. (1991) Chlorophyll fluorescence and photosynthesis: the basics. Ann. Rev. of Plant Physiol. Plant Mol. Biol., 42, 313-349.
  • Long, S.P., Humphries, S., Falkowski, P.G. (1994) Photoinhibition of photosynthesis in nature. Ann. Rev. of Plant Physiol. Plant Mol. Biol., 45, 633-662.
  • Maxwell, K., Johanson, G.N. (2000) Chlorophyll fluorescence -a practical guide. J. of Exp. Bot. 51, 659-668.
  • Murchie, Chen, Y., Hubbart, S., Peng, S., Horton, P. (1999) Interactions between Senescence and Leaf Orientation Determine in Situ Patterns of Photosynthesis and Photo-inhibition in Field-Grown Rice. Plant Physiol., 119, 553-563.
  • Ohad, I., Sonoike, K., Andersson, B. (2000) Photoinactivation of the two photosystems in oxygenic photosynthesis: mechanisms and regulations, In: M. Yunus, U. Pathre, P. Mohanty, (eds.): Probing Photosynthesis: Mechanisms, Regulation and Adaptation. Taylor and Francis Publishers -London, pp. 293-309.
  • Ort, D.R., Baker, N.R. (2002) A photoprotective role for O2 as an alternative electron sink in Photosynthesis. Curr. Opi. in Plant Biol, 5, 193-198.
  • Panda, D., Sharma, S.G., Sarkar R.K. (2008) Chlorophyll fluorescence parameters, CO2 Photosynthetic rate and regeneration capacity as a result of complete submergence and subsequent re-emergence in rice (Oryza sativa L.). Aquatic Bot., 88, 127-133.
  • Pettigrew, W.T., Hesketh, J.D., Peters, D.B., Woolley, J.T. (1990) A vapour pressure deficit on crop canopy photosynthesis. Photosynth. Res., 24, 27-34.
  • Pietrini, F., Chaudhuri, D., Thapliyal, A.P., Massacci, A. (2005) Analysis of chlorophyll fluorescence transients in mandarian leaves during a photo-oxidative cold shock and recovery. Agricul. Eco. Env., 106, 189-198.
  • Prakash, J.S.S., Srivastava, A., Strasser R.J., Mohanty, P. (2003) Senescence-induced alterations in the photosystem II functions of Cucumis sativus cotyledons: probing of senescence driven alterations of photosystem II by chlorophyll a fluorescence induction O-J-I-P transients. Ind. J. of Biochem. Biophy., 40,160-168.
  • Qiang, W., Congming, L.U., Qide, Z., Naibin, H., Qiaoying, G.E., Fengqin, D., Kezhi, B., Tingyun, K. (2009) Characterization of photosynthesis, photoinhibition and the activities of C4 pathway enzymes in a superhigh-yield rice. Sci. in Chinna (Series C), 45, 468-476.
  • Quick, W.P., Chaves, M.M., Wender, R. (1992) The effects of water stress on photosynthetic carbon metabolism in four species grown under field conditions. Plant Cell Env., 15, 25-35.
  • Sarkar, R.K., Panda, D. (2009) Distinction and characterisation of submergence tolerant and Sensitive rice cultivars, probed by the fluorescence OJIP rise kinetics. Fun. Plant Biol., 36, 1-12.
  • Sayed, O.H. (2003) Chlorophyll fluorescence as a tool in cereal crop research. Photosynthetica, 41, 321-330.
  • Spunda, V., Kalina, J., Urban, O., Luis, V.C., Sibisse, I., Puertolas, J., Sprtova, M., Marck, M.V. (2005) Diurnal dyanamics of photosynthetic parameters of Norway spruce trees cultivated under ambient and elevated CO2: The reason of midday depression in CO2 assimilation, Plant Sci., 168, 1371-1381.
  • Strasser, R.J., Srivastava, A., Govindjee,(1995) Polyphasic chlorophyll a fluorescence transient in plants and cyanobacteria. Photochem. Photobiol., 61, 32-42.
  • Strasser, R.J., Tsimilli-Michael, M. (2001) Stress in plants, from daily rhythm to global changes, detected and quantified by the JIP-test. Chimie Nouvelle (SRC), 75, 3321-3326.
  • Wang, Q.A., Lu, C.M., Zhang, Q.D. (2005) Midday photoinhibition of two newly developed super-rice hybrids. Photosynthetica, 43, 277-281.
  • Xu, D.Q., Wu, S., (1996) Three phases of dark recovery course from photo-inhibition resolved by the chlorophyll fluorescence analysis in soybean leaves under field condition. Photosynthetica, 32, 417-423.
Еще
Статья научная