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2006 | 28 | 5 |

Tytuł artykułu

EGTA inhibits floral induction of Pharbitis nil via its influence on gas exchange properties of stomata

Warianty tytułu

Języki publikacji

EN

Abstrakty

EN
The purpose of the study was to determine inhibitory effect of calcium chelator; ethylene glycol-bis(2-aminoethyl- ether)-N,N,N’,N’-tetraacetic acid (EGTA) on flowering of a short-day (SD) plant Pharbitis nil. It was found that 20 mM solution of EGTA applied on cotyledons of 5-d-old A nil seedlings four hours before the start of 16-h-long induction night decreased the flowering response bye55 % compared to the control plants not treated with this Ca2 chelator. It also caused a very significant decrease of photosynthesis rate, transpiration rate and stomatal conductance both in light and darkness conditions. The results of this study confirm earlier hypothesis suggesting the effect of Ca2+ and its modulators on A nil flowering is due to their influence on the stomata.

Wydawca

-

Rocznik

Tom

28

Numer

5

Opis fizyczny

p.477-481,fig.,ref.

Twórcy

autor
  • University of Warmia and Mazury, Oczapowskiego 1a, 10-719 Olsztyn, Poland
autor
autor
autor

Bibliografia

  • Friedman H., Goldshmidt E.E., Halevy A.H. 1989. Involvement of calcium in the photoperiodic flower induction processes of Pharbitis nil. Plant Physiol. 89: 530-534.
  • Gunderson C.A., Sholtis, J.D., Wullschleger S.D., Tissue D.T., Hanson P.J., Norby R.J. 2002. Environmental and stomatal control of photosynthetic enhancement in the canopy of a sweetgum (Liquidambar styraciflua L.) plantation during 3 years of CO2 enrichment. Plant Cell Environ. 25: 379-393.
  • Hepler P.K., Wayne R.O. 1985. Ca2+ and plant development. Annu. Rev. Plant Physiol. 36: 377-439.
  • Jaworski K., Szmidt-Jaworska A., Tretyn A., Kopcewicz J. 2003. Biochemical evidence for calcium-dependent protein kinase from Pharbitis nil and its involvement in photoperiodic flower induction. Phyto t chemistry 62: 1047-1055.
  • Jaworski K., Szmidt-Jaworska A., T retyn A., Kopcewicz J. 2004. Calmodulin from Pharbitis nil: purification and characterization. Biol. Plant. 48: 55-60.
  • Kopcewicz J., Tretyn A. 1998. Physiological and cytochemical investigation on photoperiodic floral induction in Pharbitis nil. Flowering Newslett. 25: 26-34.
  • Love J., Dodd A.N., Webb A.A.R. 2004. Circadian and diurnal calcium oscillations encode photoperiodic information in Arabidopsis. Plant Cell 16: 956-966.
  • Reddy A.S.N. 2001. Calcium: silver bullet in signaling. Plant Sci. 160: 381-404.
  • Plieth C. 2005. Calcium: just another regulator in the machinery of life? Ann. Bot. 96: 1-8.
  • Szmidt-Jaworska A., Jaworski K., T retyn A., Kopcewicz J. 2003. Biochemical evidence for a cGMP-regulated protein kinase in Pharbitis nil. Phytochemistry 63: 635-642.
  • Szmidt-Jaworska A., Jaworski K., Tretyn A., Kopcewicz J. 2004. The involvement of cyclic GMP in the photoperiodic flower induction of Pharbitis nil. J. Plant Physiol. 161: 277-284.
  • Thomas B., VincePrue,D. 1996. Photoperiodism in Plants. Academic Press, London.
  • T retyn A., Cymerski M., Czaplewska J., £ukasiewicz H., Pawlak A., Kopcewicz J. 1990. Calcium and photoperiodic flower induction in Pharbitis nil. Physiol. Plant. 80: 388-392.
  • Tretyn A., Czaplewska J., Cymerski M., Kopcewicz J., Kendrick R.E. 1994. The mechanism of calcium action on flower induction in P. nil. J. Plant Physiol. 144: 562-568.
  • Tretyn A., £ukaszewska H., Kopcewicz J., Oleńczuk A., Nowakowska A. 1997. The role of cotyl edons in photoperiodic flower induction of Pharbitis nil. In Traveling Shot On Plant Development. Edited by Greppin H., Penel C. and Simon P. pp. 51-62. Uni. Geneva Press, Geneva.
  • Wang B., Zhao H., Duan C., Sakanishi A. 2002. Effects of cell wall calcium on the growth of Chrysanthemum callus under sound stimulation. Coll. Surf. B: Biointerfaces 25: 189-195.
  • Webb A.A.R. 2003. The physiology of circadian rhythms in plants. New Phytol. 160: 281-303.

Typ dokumentu

Bibliografia

Identyfikatory

Identyfikator YADDA

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