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2008 | 30 | 4 |

Tytuł artykułu

Effects of root flooding and stage of development on the growth and photosynthesis of field bean (Vicia faba L. minor)

Warianty tytułu

Języki publikacji

EN

Abstrakty

EN
Field bean plants were subjected to flooding stress for 7 days, during two stages of development: at the vegetative phase (4-week-old seedlings) and at the generative phase (8-week-old plants). The height of plants, total area of leaves, the number of undamaged leaves, dry plant matter, chlorophyll content, ribulose-1,5-bisphosphate carboxylase/oxygenase (RuBPCO) activity, the maximum quantum yield of PS2 photochemistry (Fv/Fm ratio), the photosynthesis rate (PN) and stomatal conductance (gs) were determined. A strong reduction in stem elongation and leaf area as well as in dry matter production was observed as a result of flooding. The responses from vegetative plants were greater than in generative plants. Waterlogging decreased chlorophyll a and b in leaves, notably at the vegetative stage, and persisted after cessation of flooding. After flooding, photosynthesis was strongly reduced and positively correlated with decreased stomatal conductance. Damage to the photosynthetic apparatus resulted in a lower Fv/Fm especially in young seedlings. In vegetative plants Fv/Fm quickly returned to the control levels after the soil was drained. The results show that an excess of water in the soil limits growth and injures the photosynthetic apparatus in field beans, but that the extent of the injury is strongly age dependent.

Słowa kluczowe

Wydawca

-

Rocznik

Tom

30

Numer

4

Opis fizyczny

p.529-535,fig.,ref.

Twórcy

autor
  • Department of Plant Physiology, Faculty of Agriculture and Economic, Agricultural University, Podluzna 3, 30-239 Krakow, Poland
  • Department of Plant Physiology, Faculty of Agriculture and Economic, Agricultural University, Podluzna 3, 30-239 Krakow, Poland
autor
  • Department of Plant Physiology, Faculty of Agriculture and Economic, Agricultural University, Podluzna 3, 30-239 Krakow, Poland

Bibliografia

  • Ahmed S, Nawata E, Hosokova M, Domae Y, Sakuratani T (2002a) Alterations in photosynthesis and some antioxidant enzymatic activities of mungbean subjected to waterlogging. Plant Sci 163:117–123
  • Ahmed S, Nawata E, Sakuratani T (2002b) Effect of waterlogging at vegetative and reproductive stages on photosynthesis. Lear water potential and field in mungbean. Plant Prod Sci 52:117–123
  • Alvino A, Zerbi G, Fruscinate L, Monti LM (1984) Behaviour of field bean lines with a water table maintained at different levels. In: Hebblethwaite PD, Dawkins TCK, Heath MC, Lockwod G (eds) Vicia faba: agronomy, physiology and breeding Martinus Nijhoff/Dr W. Junk Publishers, The Hague, pp 95–102
  • Asai T, Stone JM, Heard JE, Kovtun Y, Yorgey P, Sheen J, Ausubel FM (2000) Fumonisin B1-induced cell death in Arabidopsis protoplasts requires jasmonate- ethylene- and salicylate-dependent signaling pathways. Plant Cell 12:1823–1836
  • Bacanamwo M, Purcell LC (1999) Soybean root morphological and anatomical traits associated with acclimation to flooding. Crop Sci 39:143–149
  • Boru G, van Ginkel M, Kronstad WE, Boersma L (2001) Expression and inheritance of tolerance to waterlogging stress in wheat. Euphytica 117:91–8
  • Bradford KJ, Yang SF (1980) Xylem transport of 1-aminocyclopropane-1-carboxylic acid an ethylene precursor in waterlogged tomato plants. Plant Physiol 65:322–326
  • Dat JF, Capelli N, Folzer H, Bourgeade P, Badot P-M (2004) Sensing and signaling during plant flooding. Plant Physiol Biochem 42:273–282
  • Filek W, Kościelniak J (1993) Fizjologiczne reakcje bobiku (Vicia faba L. minor) na warunki wegetacji zale_zne od terminu siewu. Acta Agraria et Silvestria XXXI:51–62 (in Polish with English summary)
  • Filek W, Grzesiak S, Skrudlik G (1994) Effect of waterlogging on the growth. biomass production and generative development of field bean (Vicia faba L. minor). Bull Acad Polon Sci Biol Sci 42:73–81
  • Grichko VP, Glick BR (2001) Ethylene and flooding stress in plants. Plant Physiol Biochem 39:1–9
  • Grzesiak S, Filek W, Kościelniak J (1989a) Influence of different soil moistures during the vegetative phase of development of field bean (Vicia faba L. var. minor) on leaf water status, photosynthesis rate and plant growth. J Agron Crop Sci 162:192–200
  • Grzesiak S, Kościelniak J, Filek W, Augustyniak G (1989b) Effect of soil drought in the generative phase of development of field bean (Vicia faba L. var. minor) on leaf water status photosynthesis rate and biomass growth. J Agron Crop Sci 162:241–247
  • Grzesiak S, Filek W, Pieńkowski S, Nizioł B (1996a) Screening for drought resistance: evaluation of drought susceptibility index of legume plants under natural growth conditions. J Agron Crop Sci 177:237–244
  • Grzesiak S, Filek W, Skrudlik G, Nizioł B (1996b) Screening of seed germination and seedlings growth for drought resistance in legume plants. J Agron Crop Sci 177:245–252
  • Hebblethwaite PD (1982) The effects of water stress on the growth, development and yield of Vicia faba L. In: Hawtin G, Webb C (eds) Faba bean improvement. Martinus Nijhoff Publishers, The Hague, pp 165–175
  • Hiron RWP, Wright STC (1973) The role of endogenous abscisic acid in the response of plants to stress. J Exp Bot 24:769–781
  • Jackson MB (2002) Long-distance signalling from roots to shoots assessed: the flooding story. J Exp Bot 53:175–181
  • Jackson MB, Campbell DJ (1975) Ethylene and waterlogging effects in tomato. Ann Appl Biol 81:102–105
  • Jackson MB, Campbell DJ (1976) Waterlogging and petiole epinasty in tomato: the role of ethylene and oxygen. New Phytol 76:21–29
  • Jackson MB, Gates K, Campbell DJ (1978) Effect of waterlogged soil conditions on the production of ethylene and on water relationships in tomato plants. J Exp Bot 29:183–193
  • Kościelniak J, Filek W, Grzesiak S (1989) Influence of soil drought on plant growth, assimilation and dissimilation in field bean (Vicia faba L. var. minor) during pod formation and rapid pod growth. J Agron Crop Sci 163:330–337
  • Lichtenthaler HK, Wellburn AR (1983) Determination of total carotenoids and chlorophyll a and b of leaf extracts in different solvents. Biochem Soc Trans 603:590–592
  • Mielke MS, de Almeida A-AF, Gomes FP, Aguilar MAG, Mangabeira PAO (2003) Leaf gas exchange, chlorophyll fluorescence and growth responses of Genipa americana seedlings to soil flooding. Envinron Exp Bot 50:221–231
  • Probert ME, Keating BA (2000) What soil constraint should be included in crop and forest models? Agric Ecosyst Environ 82:273–281
  • Przywara G, Stępniewski W (1999) The influence of waterlogging at different temperatures on penetration of roots and on stomatal diffusive resistance of pea and maize seedlings. Acta Physiol Plant 21:405–411
  • Reid DM, Crozier A (1971) Effects of waterlogging on the gibberellin content and growth of tomato plants. J Exp Bot 22:39–48
  • Sharkey TD, Saritch LV, Butz ND (1991) Photosynthetic method for routine determination of kcat and carbamylation of rubisco. Photosynth Res 28:41–48
  • Smethurst CF, Shabala S (2003) Screening methods for waterlogging tolerance in lucerne: comparative analysis of waterlogging effects on chlorophyll fluorescence, photosynthesis, biomass and chlorophyll content. Funct Plant Biol 30:335–343
  • Waldhoff D, Furch B, Junk WJ (2002) Fluorescence parameters, chlorophyll concentration and anatomical features as indicators for flood adaptation of an abundant tree species in Central Amazonia: Symmeria paniculata. Environ Exp Bot 48:225–235
  • Visser EJW, Voesenek LACJ, Vartapetian BB, Jackson MB (2003) Flooding and plant growth. Ann Bot 91:107–109
  • Yu Q, Rengel Z (1999) Waterlogging influences plant growth and activities of superoxide dismutases in narrow-leafed lupin and transgenic tobacco plants. J Plant Physiol 155:431–438
  • Zhou W, Lin X (1995) Effects of waterlogging at different growth stages on physiological characteristics and seed yield of winter rape (Brassica napus L.). Field Crops Res 44:103–110

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Bibliografia

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