Accès libre

The Adaptive Ability of Cornus Stolonifera Michx. ´Kelseyi´ in Changing Environment

À propos de cet article

Citez

BAUERLE, W. I. - DUDLEY, J. B. - GRIMES, L. W. 2003. Genotypic variability in photosynthesis, water use and light absorption among Red and Freeman Maple cultivars in response to drought stress. In: Journal of the American society for horticulture science, vol. 128, 2003. no. 3, p. 337-342.Search in Google Scholar

BJORKMAN, O. - DEMMING, B. 1987. Photon yield of O2 evolution and chlorophyll fluorescence characteristics at 77 K among vascular plants of diverse origins. In: Planta, vol. 170, 1987, no. 4, p. 489-504.Search in Google Scholar

GALLE, A. - FELLER, U. 2007. Changes of photosynthetic traits in beech saplings (Fagus sylvatica) under severe drought stress and during recovery. In: Physiologia Plantarum, vol. 131, 2007. p. 412-421.Search in Google Scholar

HLIZOVA, E. 2008. Využiti fluorescence chlorofylu ke sledovani fyziologickeho stavu vegetace. Bakalarska praca. Praha : Univerzita Karlova, 2008, 34 p.Search in Google Scholar

LICHTENTHALER, H. K. 1997. Fluorescence imaging as a diagnostic tool for plant stress. In: Trends in plant science, vol. 2, 1997, no. 8, p. 316-320.Search in Google Scholar

LICHTENTHALER, H. K. 2000. Detection of photosynthetic activity and water stress by imaging the red chlorophyll fluorescence. In: Plant Physiology and Biochemistry, vol. 38, 2000, no. 11, p. 889-895.Search in Google Scholar

LICHTENTHALER, H. K. - RINDERLE, U. 1988. Chlorophyll fluorescence signatures as vitality indicators in forest decline research. In: Applications of chlorophyll fluorescence. Kluwer Academic Publishers, 1988, p. 143-149.Search in Google Scholar

LICHTENTHLALER, H. K. - BUSCHMANN, C. - KNAPP, M. 2005. How to correctly determine the different chlorophyll fluorescence parameters and the chlorophyll fluorescence decrease ratio R-Fd of leaves with the PAM fluorometer. In: Photosynthetica, vol. 43, 2005, p. 379-393.Search in Google Scholar

MUNNE-BOSCH, S. - SCHWARZ, K. - ALEGRE, L. 1999. Enhanced formation of α-tocopherol and highly oxidized abietane dipertenes in water-stressed Rosemary plants. In: Plant Physiology, vol. 121, 1999, p. 1047-1052.Search in Google Scholar

NAUMANN, J. C. - YOUNG, D. R. - ANDERSON, J. E. 2007. Linking leaf chlorophyll fluorescence properties to physiological response for detection of salt and drought stress in coastal plant species. In: Physiologia plantarum, vol. 131, 2007, p. 422-433.Search in Google Scholar

NIINEMETS, U. - KULL, O. 2001. Sensitivity of photosynthetic electron transport to photoinhibition in a temperate deciduos forest canopy: Photosystem II center openness, nono-radiative energy dissipation and excess irradiance under field conditions. In: Tree Physiology, vol. 21, 2001, p. 899-914.Search in Google Scholar

PEGUERO-PINA, J. J. - MORALES, F. - FLEXAS, J. - GIL-PELEGRIN, E. - MOYA, I. 2008. Photochemistry, remotely sensed physiological reflectance index and de-epoxidation state of the xanthophyll cycle in Quercus coccifera under intense drought. In: Oecologia, vol. 156, 2008, p. 1-11.Search in Google Scholar

PUKACKI, P. M. - MODRZYŃSKI, J. 1988. The influence of ultraviolet-B radiaton on the growth, pigment production and chlorophyll fluorescence of Norway spruce seedlings. In: Acta Physiologiae Plantarum, vol. 20, 1988, no. 3, p. 245-250.Search in Google Scholar

TOMEKOVA, B. 2010. Fenologia a fluorescencia chlorofylu jaseňa mannoveho rastuceho v Arborete Borova hora. Diplomova praca. Zvolen : Technicka univerzita, 2010. s. 97.Search in Google Scholar

VAŇOVA, L. - KUMMEROVA, M. 2006. Use of chlorophyll fluorescence for indication of stress in lower and higher plants. In: Vliv abiotickych a biotickych stresorů na vlastnosti rostlin 2006 : sbornik přispěvků. Praha: Česka zemědelska univerzita, 2006. no. 1, p. 300. ISBN 80-213-1484-2.Search in Google Scholar

eISSN:
1338-5259
Langue:
Anglais
Périodicité:
2 fois par an
Sujets de la revue:
Industrial Chemistry, Green and Sustainable Technology