Changes in physiological features of undergrowth indicator species of old forest

Authors

  • Katarzyna Możdżeń Independent researcher
  • Beata Barabasz-Krasny Department of Botany, Institute of Biology and Earth Science, Pedagogical University of Krakow
  • Halina Galera University of Warsaw, Faculty of Biology, Department of Ecology and Environmental Conservation, Biological and Chemical Research Centre, Żwirki i Wigury 101 St., 02-089 Warsaw, Poland
  • Wojciech Antkowiak Department of Botany, Poznań University of Life Sciences, Wojska Polskiego 71C St., 60-625 Poznań, Poland
  • Maciej Wódkiewicz University of Warsaw, Faculty of Biology, Department of Ecology and Environmental Conservation, Biological and Chemical Research Centre, Żwirki i Wigury 101 St., 02-089 Warsaw, Poland

DOI:

https://doi.org/10.24917/25438832.8.4

Keywords:

anthropogenic pressure, biomass, chlorophyll, environmental stress, phenology, PSII

Abstract

The study concerns the study of selected physiological features of three indicator species of the undergrowth of the oak-hornbeam forest (Anemone nemorosa L., Galeobdolon luteum Huds. emend. Holub and Stellaria holostea L.), after the forest canopy closure. Las Wolski, an isolated forest complex located within the city of Cracow (Southern Poland), was selected for the study. The plant material was collected at two points in the season – right after the forest canopy closure and a month later. Under laboratory conditions, the physiological characteristics of the indicator species were analysed. Light stress may play a smaller role here, and physiological parameters are probably most affected by the phenology of undergrowth species, which is adapted to seasonal changes in habitat conditions. However, these issues require more research.

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References

Baker, N.R. 2008. Chlorophyll fluorescence: a probe of photosynthesis in vivo. Annual Review of Plant Biology, 59(1), 89–113. https://doi.org/10.1146/annurev.arplant.59.032607.092759

Bajji, M., Kinet, J-M., Lutts, S. 2002. The use of the electrolyte leakage method for assessing cell membrane stability as a water stress tolerance test in durum wheat. Plant Growth Regulation, 36, 61–70. https://doi.org/10.1023/A:1014732714549

Banach, D., Skrzypek, A. 2018. Problemy gospodarki leśnej w Lasku Wolskim. PUA Przestrzeń Urbanistyka Architektura, 2, 111–121. [In Polish]

Barnes, J.D., Balaguer, L., Manrique, E., Elvira, S., Davison, A.W. 1992. A reappraisal of the use of DMSO for the extraction and determination of chlorophylls a and b in lichens and higher plants. Environmental and Experimental Botany, 32, 83–100. https://doi.org/10.1016/0098-8472(92)90034-Y

Barrs, H.D. 1968. Determination of water deficits in plant tissues. In: T. T. Kozlowski (ed.), Water Deficits and Plant Growth, Vol. I, pp. 235–368. Academic Press, New York.

Berdau, F. 1859. Flora Cracoviensis (Flora okolic Krakowa). S. I–VIII. Cracoviae, typis C. R. Univ. Jagell. [In Polish]

Björkman, O., Demmig, B. 1987. Photon yield of O2 evolution and chlorophyll fluorescence characteristics at 77K among vascular plants of diverse origins. Planta, 170, 489–504. https://doi.org/10.1007/BF00402983

Buschmann, C., Lichtenthaler, H.K. 1998. Principles and characteristics of multi-colour fluorescence imaging of plants. Journal of Plant Physiology, 152, 297–314. https://doi.org/10.1016/S0176-1617(98)80144-2

Casal, J.J. 2012. Shade Avoidance. The Arabidopsis Book. American Society of Plant Biologists, s. 1–19. https://doi.org/10.1199/tab.0157

Dexter, S.T., Tottingham, W.E., Garber, L.F. 1932. Investigations of the hardiness of plants by measurements of electrical conductivity. Plant Physiology, 7(1), 63–78. https://doi.org/10.1104/pp.7.1.63

Drożak, A., Romanowska, E. 2006. Acclimation of mesophyll and bundle sheath chloroplasts of maize to different irradiances during growth. Biochimica et Biophysica Acta (BBA) – Bioenergetics, 1757(11), 1539–1546. https://doi.org/10.1016/j.bbabio.2006.09.001

Dubiel, E. 1971. Aktualny stan roślinności Lasu Wolskiego – miejskiego parku w Krakowie. Chrońmy Przyrodę Ojczystą, 27(1), 18–26. [In Polish]

Dzwonko, Z., Loster, S. 1988. Species richness of small woodlands on the western Carpathian foothills. Vegetatio, 76, 15–27. https://doi.org/10.1007/BF00047384

Dzwonko, Z., Loster, S. 1989. Distribution of vascular plant species in small woodlands on the western Carpathian foothills. Oikos, 56, 77–86. https://doi.org/10.2307/3566089

Dzwonko, Z., Loster, S. 2001. Wskaźnikowe gatunki roślin starych lasów i ich znaczenie dla ochrony przyrody i kartografii roślinności. IGiPZ PAN, Prace Geograficzne, 178, 120–132. [In Polish]

Ellenberg. H., Weber. H., Dull. R., Wirth V., Werner, W., Paulissen, D. 1992. Zeigerwerte von Pflanzen in Mitteleuropa. Scripta Geobotanica, 18, 1–258.

Endler, J.A. 1993. The color of light in forests and its implications. Ecological Monographs, 63, 1–27. https://doi.org/10.2307/2937121

Flora Polski (Plants of Poland), www.atlas-roslin.pl; Access: 2002-2023. [In Polish]

Fracheboud, Y., Luquez ,V., Björkén, L., Sjödin, A., Tuominen, H., Jansson, S. 2009. The control of autumn senescence in European Aspen. Plant Physiology, 149, 1982–1991. https://doi.org/10.1104/pp.108.133249

Franklin, K.A., Whitelam, G.C. 2005. Phytochromes and shade-avoidance responses in plants. Annals of Botany, 96(2), 169–175. https://doi.org/10.1093/aob/mci165

Gitelson, A., Buschmann, C., Lihtentahler, H.K. 1998. Leaf chlorophyll fluorescence corrected for re-absorption by means of absorption and reflectance measurements. Journal of Plant Physiology, 152(1-2), 283–296. https://doi.org/10.1016/S0176-1617(98)80143-0

Heber, U., Bilger, W., Shuvalov ,V.A. 2006. Thermal energy dissipation in reaction centres and in the antenna of photosystem II protects desiccated poikilohydric mosses against photo-oxidation. Journal of Experimental Botany, 57(12), 2993–3006. https://doi.org/10.1093/jxb/erl058

Hellal, F., Amer, A., Azab, K.E.L., Zewainy, R. 2018. Impact of irrigation water salinity on germination and seedling growth of Egyptian Barley Cultivars. Journal of Agricultural Science and Technology B, 8, 290–302. https://doi.org/10.17265/2161-6264/2018.05.003

Hermy, M., Honnay, O., Firbank, L., Grashof-Bokdam, C., Lawesson, J.E. 1999. An ecological comparison between ancient and other forest plant species of Europe, and the implications for forest conservation. Biological Conservation, 91(1), 9–22. https://doi.org/10.1016/S0006-3207(99)00045-2

Hetmann, A., Kowalczyk, S. 2011. Potranslacyjne modyfikacje czynników transkrypcyjnych PIF/PIL jako efekt rozkodowywania przez fitochromy sygnałów świetlnych. Postępy Biologii Komórki, 38(1), 49–46. [In Polish]

Hura, K., Jurczyk, B., Ostrowska, A., Rapacz, M., Śniegowska-Świerk, K., Wójcik-Jagła, M., Żmuda, K., Biesaga-Kościelniak, J., Kościelniak, J. 2014. Physiological indicators of drought tolerance in barley. In: M. Surma, P. Krajewski (ed.), Methodology of system approach to study drought tolerance in barley, pp. 125–132. Institute of Plant Genetics PAS, Poznań.

Jena, S., Acharya, S., Mohapatra, P.K. 2012. Variation in effects of four OP insecticides on photosynthetic pigment fluorescence of Chlorella vulgaris Beij. Ecotoxicology and Environmental Safety, 80, 111–117. https://doi.org/10.1016/j.ecoenv.2012.02.016

Johanson, G.N., Young, A.J., Scholes, J.D., Horton, P. 1993. The dissipation of excess excitation energy in British plant species. Plant, Cell and Environment, 16(6), 673–679. https://doi.org/10.1111/j.1365-3040.1993.tb00485.x

Kalaji, M.H., Łoboda, T. 2010. Fluorescencja chlorofilu w badaniach stanu fizjologicznego roślin. Wydawnictwo SGGW, Warszawa.

Keller, M.M., Jaillais, Y., Pedmale, U.V., Moreno, J.E., Chory, J., Ballaré, C.L. 2011. Cryptochrome 1 and phytochrome B control shade-avoidance responses in Arabidopsis via partially independent hormonal cascades. The Plant Journal, 67(2), 195–207. https://doi.org/10.1111/j.1365-313X.2011.04598.x

Kimberley, A., Blackburn, G.A., Whyatt, J.D., Kirby, K., Smart, S.M. 2013. Identifying the trait syndromes of conservation indicator species: how distinct are British ancient woodland indicator plants from other woodland species? Applied Vegetation Science, 16, 667–675. https://doi.org/10.1111/avsc.12047

Kirchhoff, H. 2014. Structural changes of the thylakoid membrane network induced by high light stress in plant chloroplasts. Philosophical Transactions of the Royal Society B, 369(1640), 2013–2025. https://doi.org/10.1098/rstb.2013.0225

Kornaś, J. 1948. O ochronę ścianki z roślinnością kserotermiczną na Bielanach koło Krakowa. Chrońmy Przyrodę Ojczystą, 4, 34–38. [In Polish]

Kornaś, J., Medwecka-Kornaś, A. 1974. Szata roślinna Krakowa [The vegetation of Cracow]. Folia Geographica Series Geographico-Physica, 8, 153–169. [In Polish]

Krupa J. 1877. Wykaz roślin zebranych w obrębie W. Ks. Krakowskiego oraz Puszczy Niepołomickiej w r. 1876. Sprawozdanie Komisyi Fizjograficznej, 11, 84–128. [In Polish]

Kusior M., Krośniak M., Chłopicka J., Zagrodzki J. 2012. Wpływ światła o różnej długości fal na rozwój roślin i wybrane parametry biochemiczne na przykładzie rzeżuchy (Lepidium sativum) i gorczycy (Sinapis alba). Bromatologia i Chemia Toksykologiczna, 45(3), 717–721. [In Polish]

Kwak, M.J., Lee, S.H., Woo, S.Y. 2011. Physiological and biochemical traits of different water and light intensities on cork oak (Quercus suber L.) seedlings. African Journal of Biotechnology, 10(68), 15305–15319. https://doi.org/10.5897/AJB.9000397

Kwaśniewski, M., Daszkowska-Golec. A., Janiak, A., Chwialkowska, K., Nowakowska, U., Sablok, G., Szarejko, I. 2016. Transcriptome analysis reveals the role of the root hairs as environmental sensors to maintain plant functions under water-deficiency conditions. Journal of Experimental Botany, 67(4), 1079–1094. https://doi.org/10.1093/jxb/erv498

Lang, M., Stober, F., Lichtenthaler, H.K. 1991. Fluorescence emission spectra of plant leaves and plant constituents. Radiation and Environmental Biophysics, 30, 333–347. https://doi.org/10.1007/BF01210517

Lichtenthaler, H.K., Buschmann, C., Knapp, M. 2004a. Measurement of chlorophyll fluorescence kinetics (Kautsky effect) and the chlorophyll fluorescence decrease ratio (RFd–values) with the PAM–Fluorometer. [In:] Filek. N., Biesaga-Kościelniak. J., Marcińska. I. (ed.), Analytical Methods in Plant Stress Biology. The Franciszek Górski Institute of Plant Physiology of the Polish Academy of Sciences, Krakau, 93–111.

Lichtenthaler, H.K., Knapp, M., Buschmann, C. 2004b. Recording chlorophyll fluorescence emission spectra with the Perkin Elmer fluorescence spectrometer LS 50. [In:] N. Filek, J. Biesaga-Kościelniak, I. Marcińska, (ed.), Analytical Methods in Plant Stress Biology. The Franciszek Górski Institute of Plant Physiology of the Polish Academy of Sciences, Krakau, 112–124.

Lin, W.C., Jolliffe, P.A. 2000. Chlorophyll fluorescence of long English cucumber affected by storage conditions. Acta Horticulturae, 517(517), 449–456. https://doi.org/10.17660/ActaHortic.2000.517.57

Matuszkiewicz, J.M., Kowalska, A., Solon, J., Degórski, M., Kozłowska, A., Roo-Zielińska, E., Zawiska, I., Wolski, J. 2013. Long-term evolution models of post-agricultural forests. Instytut Geografii i Przestrzennego Zagospodarowania, Prace Geograficzne, 240, 3–320.

Maxwell, K., Johnson, G.N. 2000. Chlorophyll fluorescence – a practical guide. Journal of Experimental Botany, 51(345), 659–668. https://doi.org/10.1093/jexbot/51.345.659

Medwecka-Kornaś A. 2011. The association Pino-Quercetum in the past and the present, in the forest “Las Wolski” (Krakow, Southern Poland), [In:] B. Zemanek (ed.) Geobotanist and Taxonomist. A volume dedicated to Professor Adam Zając on the 70th anniversary of his birth, p. 91–115. Institute of Botany, Jagiellonian University, Cracow.

Molga, M., Sokołowska, J. 1963. Fenologiczne pory roku w Polsce. Wiadomości IMGW, 55(3), 3–34. [In Polish]

Możdżeń, K., Barabasz-Krasny, B., Stachurska-Swakoń, A., Zandi, P., Puła, J., Wang, Y., Turisova, I. 2020. Allelopathic interaction between two common meadow plants: Dactylis glomerata L. and Trifolium pratense L. Biologia, 75, 653–663. https://doi.org/10.2478/s11756-020-00438-6.

Orczewska, A. 2010. Odtwarzanie się roślinności runa we wtórnych lasach olszowych powstałych na gruntach porolnych w południowo-zachodniej Polsce. Acta Botanica Silesiaca, 5, 5–26. [In Polish]

Oxborough, K. 2004. Imaging of chlorophyll a fluorescence: theoretical and practical aspects of an emerging technique for the monitoring of photosynthetic performance. Journal of Experimental Botany, 55(400), 1195–1205. https://doi.org/10.1093/jxb/erh145

Peterken, G.F. 1974. A method for assessing woodland flora for conservation using indicator species. Biological Conservation, 6(4), 239–245. https://doi.org/10.1016/0006-3207(74)90001-9

Peterken, G.F., Game, M. 1984. Historical factors affecting the number and distribution of vascular plant species in the woodlands of central Lincolnshire. Journal of Ecology, 72, 155–182. https://doi.org/10.2307/2260011

Pilarski, J., Tokarz, K., Kocurek, M. 2012. Adaptacja roślin do składu spektralnego i intensywności promieniowania. Prace Instytutu Elektrotechniki, 256, 223–236. [In Polish]

Porcar-Castell, A., Juurola, E., Ensminger, I., Berninger, F., Hari, P., Nikinmaa, E. 2008a. Seasonal acclimation of photosystem II in Pinus sylvestris. II. Using the rate constants of sustained thermal energy dissipation and photochemistry to study the effect of the light environment. Tree Physiology, 28(10), 1483–1491. https://doi.org/10.1093/treephys/28.10.1483

Porcar-Castell, A., Juurola, E., Nikinmaa, E., Berninger, F., Ensminger, I., Hari, P. 2008b. Seasonal acclimation of photosystem II in Pinus sylvestris. I. Estimating the rate constants of sustained thermal energy dissipation and photochemistry. Tree Physiology, 28(10), 1475–1482. https://doi.org/10.1093/treephys/28.10.1475

Poznański, R. 2014. Trwałość lasu i regulacja a ochrona przyrody w lasach. Studia i Materiały CEPL w Rogowie, 6, 39(2A), 55–58. [In Polish]

Raciborski, M. 1884 Zmiany zaszłe we florze okolic Krakowa w ciągu ostatnich lat dwudziestu pięciu pod względem roślin dziko rosnących. Sprawozdanie Komisyi Fizjograficznej, 18, 99–126. [In Polish]

Randi, A.M., Freitas, M.C.A., Rodrigues, A.C., Maraschin, M., Torres, M.A. 2014. Acclimation and photoprotection of young gametophytes of Acrostichum danaeifolium to UV-B stress. Photosynthetica, 52(1), 50–56. https://doi.org/10.1007/s11099-014-0006-0

Richter, P.I., Lichtenthaler, H.K. 1996, Concept of application of synthetic optical spectra in photobiological research of plant. Journal of Plant Physiology, 148(3-4), 464–470. https://doi.org/10.1016/S0176-1617(96)80280-X

Rutkowski B. 1984. Eksperymentalne urządzanie lasów komunalnych Miejskiego Parku i Ogrodu Zoologicznego w Krakowie. Sylwan, 10, 1–13. [In Polish]

Saja, D., Rys, M., Stawoska, I., Skoczowski, A. 2016. Metabolic response of cornflower (Centaurea cyanus L.) exposed to tribenuron-methyl: one of active substance of sulfonylurea herbicides. Acta Physiologiae Plantarum, 38, 168. https://doi.org/10.1007/s11738-016-2183-x

Schweiger, J., Lang, M., Lichtenthaler, H.K. 1996. Differences in fluorescence excitation spectra of leaves. Plant Physiology, 148(5), 536–547. https://doi.org/10.1016/S0176-1617(96)80073-3

Starck, Z. 2010. Wpływ warunków stresowych na koordynację wytwarzania i dystrybucji fotoasymilatów. Postępy Nauk Rolniczych, 62(1), 9–26. [In Polish]

Starck, Z., Chołuj, D., Niemyska, B. 1993. Fizjologiczne reakcje roślin na niekorzystne czynniki środowiska. Wyd. SGGW: Warszawa, Poland, 116 pp. [In Polish]

Stober, F., Lichtenthaler, H.K. 1993. Studies on the constancy of the blue and green fluorescence yield during the chlorophyll fluorescence induction kinetics (Kautsky effect). Radiation and Environmental Biophysics, 32(4), 357–365. https://doi.org/0.1007/BF01225923

Sulkiewicz M., Ciereszko I. 2016. Fluorescencja chlorofilu a – historia odkrycia i zastosowanie w badaniach roślin. Kosmos – Problemy Nauk Przyrodniczych, 65(1), 103–115. [In Polish]

Théry, M. 2001. Forest light and its influence on habitat selection. Plant Ecology, 153, 251–261. https://doi.org/10.1023/A:1017592631542

Wulf, M. 1997. Plant species as indicators of ancient woodland in northwestern Germany. The Journal of Vegetation Science, 8, 635–642. https://doi.org/10.2307/3237367

Zygmunt, R., Banaś, J., Zięba, S. 2014. Trwałość lasów miejskich na przykładzie „Lasu Wolskiego” w Krakowie. Studia i Materiały CEPL w Rogowie, 16, 39(2A), 109–119. [In Polish]

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Published

2023-09-04

How to Cite

Możdżeń, K., Barabasz-Krasny, B., Galera, H., Antkowiak, W., & Wódkiewicz, M. (2023). Changes in physiological features of undergrowth indicator species of old forest. Annales Universitatis Paedagogicae Cracoviensis Studia Naturae, 8(1). https://doi.org/10.24917/25438832.8.4

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Experimental Biology

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