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2020 | 164 | 03 |

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Jemioła jako zagrożenie dla zdrowotności drzewostanów iglastych

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EN
Mistletoe as a threat to the health state of coniferous forest

Języki publikacji

PL

Abstrakty

EN
The forest area infected by mistletoe (Viscum album L.) in Europe has been increasing in recent years. The highest potential threat is posed by Viscum album subsp. austriacum, a parasite of Pinus sylvestris, and V. album subsp. abietis, a parasite of Abies alba. The paper presents a literature review related to biology, ecology and possible methods of limiting the negative impact of mistletoe on forest management. The vast majority of studies indicate that the presence of mistletoe negatively affects the growth as well as defensive and reproductive capabilities of trees. Due to the wasteful water management of the parasite, infected trees are particularly vulnerable to weakening during periods of drought. Mistletoe is a heliophilous taxon and forest breeding treatments should reduce light intensity in the forest canopy. Foresters should resign from leaving individual and group seed trees in forest stands inhabited by mistletoe after the cuts, because they may be a source of seeds for the parasite invasion to the neighboring stands. The most effective method against mistletoe is cutting out the infected trees. However, removal of individual trees in forest stand may be difficult, because the most often they are the dominant and hence the most vulnerable trees in the forest management. Mistletoe is also noticeable when the number of infected trees is already very large and they cannot be removed without disturbing the stability of the forest stand. Therefore, there is an urgent need to develop methods for monitoring stands for early detection of threat. Remote sensing methods can be very useful. It is also necessary to develop management strategies with mistletoe infected stands.

Wydawca

-

Czasopismo

Rocznik

Tom

164

Numer

03

Opis fizyczny

s.226-236,bibliogr.

Twórcy

autor
  • Instytut Dendrologii Polskiej Akademii Nauk, ul.Parkowa 5, 62-035 Kórnik
  • Wydział Nauk Biologicznych, Uniwersytet Zielonogórski, ul.Szafrana 1, 65-516 Zielona Góra
autor
  • Regionalna Dyrekcja Lasów Państwowych w Katowicach, ul.św.Huberta 43/45, 40-543 Katowice
autor
  • Instytut Dendrologii Polskiej Akademii Nauk, ul.Parkowa 5, 62-035 Kórnik
  • Wydział Leśny, Uniwersytet Przyrodniczy w Poznaniu, ul.Wojska Polskiego 85, 60-637 Poznań
autor
  • Biuro Urządzania Lasu i Geodezji Leśnej, Oddział w Białymstoku, ul.Lipowa 51, 15-424 Białystok
  • Instytut Dendrologii Polskiej Akademii Nauk, ul.Parkowa 5, 62-035 Kórnik
autor
  • Wydział Nauk Biologicznych, Uniwersytet Zielonogórski, ul.Szafrana 1, 65-516 Zielona Góra
  • Instytut Dendrologii Polskiej Akademii Nauk, ul.Parkowa 5, 62-035 Kórnik
  • Wydział Nauk Biologicznych, Uniwersytet Zielonogórski, ul.Szafrana 1, 65-516 Zielona Góra

Bibliografia

  • Adams D. H., Frankel S. J., Lichter J. M. 1993. Considerations when using ethephon for suppressing dwarf and leafy mistletoe infestations in ornamental landscapes. Journal of Arboriculture 19 (6): 351-357.
  • Ančić M., Pernar R., Bajić M., Seletković, A., Kolić J. 2014. Detecting mistletoe infestation on silver fir using hyperspectral images. iForest 7: 85-91.
  • Anderegg W. R. L., Hicke J. A., Fisher R. A., Allen C. D., Aukema J., Bentz B., Zeppel M. 2015. Tree mortality from drought, insects, and their interactions in a changing climate. New Phytologist 208 (3): 674-683. DOI: https://doi.org/10.1111/nph.13477.
  • Aukema J. E., Rio C. M. D. 2002. Variation in mistletoe seed deposition: effects of intra- and interspecific host characteristics. Ecography 25: 139-144. DOI: https://doi.org/10.1034/j.1600-0587.2002.250202.x.
  • Baker F. A., Knowles K., Meyer T. R., French D. W. 1989. Aerial applications of ethylene-releasing chemicals fail to promote abscission of dwarf mistletoe aerial shoots on jack pine. The Forestry Chronicle 65 (3): 194-195. DOI: https://doi.org/10.5558/tfc65194-3.
  • Barbu C. 2009. Impact of mistletoe attack (Viscum album ssp. abietis) on the radial growth of silver fir. A case study in the North of Eastern Carpathians. Annals of Forest Research 52: 89-96.
  • Barney C. W., Hawksworth F. G., Geils B. W. 1998. Hosts of Viscum album. European Journal of Forest Pathology 28: 187-208.
  • Bukowiec G., Bednarz B. 2017. Wpływ jemioły pospolitej jodłowej (Viscum album ssp. abietis) na przyrosty roczne jodły pospolitej (Abies alba). Acta Sci. Pol. Silv. Colendar. Ratio Ind. Lignar. 16 (2): 77-83.
  • Camarero J. J., González de Andrés E., Sangüesa-Barreda G., Rita A., Colangelo M. 2019. Long- and short--term impacts of a defoliating moth plus mistletoe on tree growth, wood anatomy and water-use efficiency. Dendrochronologia 56: 125598. DOI: https://doi.org/10.1016/j.dendro.2019.05.002.
  • Catal Y., Carus S. 2011. Effect of pine mistletoe on radial growth of Crimean pine (Pinus nigra) in Turkey. Journal of Environmental Biology 32: 263-270.
  • Chodkiewicz T., Kuczyński L., Sikora A., Chylarecki P., Neubauer G., Ławicki Ł., Stawarczyk T. 2018. Trendy liczebności ptaków w Polsce. GIOŚ, Warszawa.
  • Dobbertin M., Rigling A. 2006. Pine mistletoe (Viscum album ssp. austriacum) contributes to Scots pine (Pinus sylvestris) mortality in the Rhone valley of Switzerland. Forest Pathology 36 (5): 309-322. DOI: https://doi.org/10.1111/ j.1439-0329.2006.00457.x.
  • Durand-Gillmann M., Cailleret M., Boivin T., Nageleisen L.-M., Davi H. 2014. Individual vulnerability factors of Silver fir (Abies alba Mill.) to parasitism by two contrasting biotic agents: mistletoe (Viscum album L. ssp. abietis) and bark beetles (Coleoptera: Curculionidae: Scolytinae) during a decline process. Annals of Forest Science 71 (6): 659-673. DOI: https://doi.org/10.1007/s13595-012-0251-y.
  • Gea-Izquierdo G., Férriz M., García-Garrido S., Aguín O., Elvira-Recuenco M., Hernandez-Escribano L., Raposo R. 2019. Synergistic abiotic and biotic stressors explain widespread decline of Pinus pinaster in a mixed forest. Science of The Total Environment 685: 963-975. DOI: https://doi.org/10.1016/j.scitotenv.2019.05.378.
  • Geils B. W., Cibrian-Tovar J., Moody B. 2002. Mistletoes of North American conifers. USDA For. Serv., Gen. Tech. Rep. RMRSGTR-98, Rocky Mountain Research Station, Ogden, UT.
  • Griebel A., Watson D., Pendall E. 2017. Mistletoe, friend and foe: synthesizing ecosystem implications of mistletoe infection. Environmental Research Letters 12 (11): 115012. DOI: https://doi.org/10.1088/1748-9326/aa8fff.
  • van Halder I., Castagneyrol B., Ordóńez C., Bravo F., del Río M., Perrot L., Jactel H. 2019. Tree diversity reduces pine infestation by mistletoe. Forest Ecology and Management 449: 117470. DOI: https://doi.org/10.1016/j.foreco. 2019.117470.
  • Hawksworth F. G. 1983. Mistletoes as forest parasites. W: Calder M., Bernhardt P. [red.]. The biology of mistletoes. Sydney: Academic Press. 317-333.
  • Hawksworth F., Scharpf R., Marosy M. 1991. European mistletoe continues to spread in Sonoma County. California Agriculture 45 (6): 39-40.
  • Hódar J. A., Lázaro-González A., Zamora R. 2018. Beneath the mistletoe: parasitized trees host a more diverse herbaceous vegetation and are more visited by rabbits. Annals of Forest Science 75 (3): 77. DOI: https://doi.org/ 10.1007/s13595-018-0761-3.
  • Hoyt H. M., Hornsby W., Huang C.-H., Jacobs J. J., Mathiasen R. L. 2017. Dwarf mistletoe control on the Mescalero Apache Indian Reservation, New Mexico. Journal of Forestry 115 (5): 379-384. DOI: https://doi.org/10.5849/ jof.16-049.
  • Idžojtić M., Pernar R., Glavaš M., Zebec M., Diminić D. 2008. The incidence of mistletoe (Viscum album L. ssp. abietis (Wiesb.) Abrom.) on silver fir (Abies alba Mill.) in Croatia. Biologia 63 (1): 81-85. DOI: https://doi.org/ 10.2478/s11756-008-0014-2.
  • Iszkuło G., Armatys L., Ksepko M., Tomaszewski D., Giertych M. J. 2019. Jemioła – coraz poważniejsze zagrożenie dla polskich lasów. Las Polski 13-14: 13-15.
  • Jasiczek N., Giertych J. M., Suszka J. 2017. Wpływ jemioły (Viscum album) na jakość nasion sosny zwyczajnej (Pinus sylvestris). Sylwan 161 (7): 558-564. DOI: https://doi.org/10.26202/sylwan.2017055.
  • Jeffree C. E., Jeffree E. P. 1996. Redistribution of the potential geographical ranges of mistletoe and Colorado beetle in Europe in response to the temperature component of climate change. Functional Ecology 10 (5): 562. DOI: https://doi.org/10.2307/2390166.
  • Kenaley S. N. C., Mathiasen R. L., Daugherty C. M. 2006. Selection of dwarf mistletoe-infected ponderosa pines by Ips species (Coleoptera: Scolytidae) in northern Arizona. Western North American Naturalist 66: 279-284.
  • Klutsch J. G., Najar A., Cale J. A., Erbilgin N. 2016. Direction of interaction between mountain pine beetle (Dendroctonus ponderosae) and resource-sharing wood-boring beetles depends on plant parasite infection. Oecologia 182: 1-12.
  • Kollas C., Gutsch M., Hommel R., Lasch-Born P., Suckow F. 2017. Mistletoe-induced growth reductions at the forest stand scale. Tree Physiology 38 (5): 735-744. DOI: https://doi.org/10.1093/treephys/tpx150.
  • Kołodziejek J., Kołodziejek A. 2013. The spatial distribution of pine mistletoe Viscum album ssp. austriacum (Wiesb.) Volmann in a Scots pine (Pinus sylvestris L.) stand in Central Poland. Polish Journal of Ecology 61 (4): 705-714.
  • Lazaro-Gonzalez A., Hodar J. A., Zamora R. 2019a. Mistletoe generates non-trophic and trait-mediated indirect interactions through a shared host of herbivore consumers. Ecosphere 10 (3): e02564. DOI: https://doi.org/ 10.1002/ecs2.2564.
  • Lazaro-Gonzalez A., Hodar J. A., Zamora R. 2019b. Mistletoe versus host pine: does increased parasite load alter the host chemical profile? Journal of Chemical Ecology 45: 95-105. DOI: https://doi.org/10.1007/s10886-018-1039-9.
  • Livingston W. H., Blanchette R. A., Brenner M. L., Zuzek K. J. 1985. Effective use of ethylene-releasing agents to prevent spread of eastern dwarf mistletoe on black spruce. Canadian Journal of Forest Research 15 (5): 872-876. DOI: https://doi.org/10.1139/x85-140.
  • Mabberley D. J. 2008. Mabberley’s Plant-book: a portable dictionary of plants, their classifications, and uses. Cambridge, New York Cambridge University Press.
  • Mellado A., Morillas L., Gallardo A., Zamora R. 2016. Temporal dynamic of parasite-mediated linkages between the forest canopy and soil processes and the microbial community. New Phytologist 211 (4): 1382-1392. DOI: https://doi.org/10.1111/nph.13984.
  • Mellado A., Zamora R. 2017. Parasites structuring ecological communities: The mistletoe footprint in Mediterranean pine forests. Functional Ecology 31 (11): 2167-2176. DOI: https://doi.org/10.1111/1365-2435.12907.
  • Munns E. N. 1919. Effect of fertilization on the seed of Jeffrey pine. The Plant World 22 (5): 138-144.
  • Mutlu S., Ilhan V., Turkoglu H. I. 2016. Mistletoe (Viscum album) infestation in the Scots pine stimulates drought--dependent oxidative damage in summer. Tree Physiology 36(4): 479-489. DOI: https://doi.org/10.1093/treephys/ tpv135.
  • Negron J. F., Wilson J. L. 2003. Attributes associated with probability of infestation by the pinon Ips, Ips confusus (Coleoptera: Scolytidae), in pinon pine, Pinus edulis. Western North American Naturalist 63: 440-451.
  • Noetzli K. P., Muller B., Sieber T. N. 2003. Impact of population dynamics of white mistletoe (Viscum album ssp. abietis) on European silver fir (Abies alba). Annals of Forest Science 60 (8): 773-779. DOI: https://doi.org/10.1051/ forest:2003072.
  • Overton J. M. C. 1994. Dispersal and infection in mistletoe metapopulations. Journal of Ecology 82: 711-723. DOI: https://doi.org/10.2307/2261437.
  • Page J. M. 1981. Drought-accelerated parasitism of conifers in the mountain ranges of Northern California. Environmental Conservation 8 (3): 217-226. DOI: https://doi.org/10.1017/S0376892900027661.
  • Perlińska A. 2019. Zamieranie drzewostanów w Polsce – sytuacja aktualna, zagrożenia i prognoza. Materiały konferen-cyjne, Instytut Badawczy Leśnictwa. https://www.ibles.pl/web/konfochr/published/2019.
  • Piirto D. D., Crews D. L., Troxel, H. E. 1974. The effects of dwarf mistletoe on the wood properties of lodgepole pine. Wood and Fiber Science 6 (1): 26-35.
  • Pilichowski S., Filip R., Kościelska A., Żaroffe G., Żyźniewska A., Iszkuło G. 2018. Wpływ Viscum album ssp. austriacum (Wiesb.) Vollm. na przyrost radialny Pinus sylvestris L. Sylwan 162 (6): 452-459. DOI: https://doi.org/ 10.26202/sylwan.2018009.
  • Piotrowski A., Ochocka J. R., Stefanowicz J., Łuczkiewicz M. 2003. Molecular genetic survey of European mistletoe (Viscum album) subspecies with allele-specific and dCAPS type markers specific for chloroplast and nuclear DNA sequences. Planta Medica 69 (10): 939-944. DOI: https://doi.org/10.1055/s-2003-45104.
  • Reid N., Smith N. M., Yan Z. 1995. Ecology and population biology of mistletoes. W: Lowman M. D., Nadkarni N. M. [red.]. Forest canopies. Academic Press, San Diego, CA. 285-310.
  • Richter A., Popp M. 1992. The physiological importance of accumulation of cyclitols in Viscum album L. New Phytologist 121 (3): 431-438. DOI: https://doi.org/10.1111/j.1469-8137.1992.tb02943.x.
  • Rigling A., Eilmann B., Koechli R., Dobbertin M. 2010. Mistletoe-induced crown degradation in Scots pine in a xeric environment. Tree Physiology 30 (7): 845-852. DOI: https://doi.org/10.1093/treephys/tpq038.
  • Sanguesa-Barreda G., Linares J. C., Camarero J. J. 2012. Mistletoe effects on Scots pine decline following drought events: insights from within-tree spatial patterns, growth and carbohydrates. Tree Physiology 32 (5): 585-598. DOI: https://doi.org/10.1093/treephys/tps031.
  • Schaffer B. 1983. Effects of comandra blister rust and dwarf mistletoe on cone and seed production of lodgepole pine. Plant Disease 67 (2): 215. DOI: https://doi.org/10.1094/PD-67-215.
  • Schaller G., Urech K., Grazi G., Giannattasio M. 1998. Viscotoxin composition of the three European subspecies of Viscum album. Planta Medica 64 (7): 677-678. DOI: https://doi.org/10.1055/s-2006-957553.
  • Schulze E. D., Ehleringer J. R. 1984. The effect of nitrogen supply on growth and water-use efficiency of xylem-tapping mistletoes. Planta 162 (3): 268-275. DOI: https://doi.org/10.1007/BF00397449.
  • Shaw D. C., Chen J., Freeman E. A., Braun D. M. 2005. Spatial and population characteristics of dwarf mistletoe infected trees in an old-growth Douglas-fir – western hemlock forest. Canadian Journal of Forest Research 35: 990-1001.
  • Singh P., Carew G. C. 1989. Impact of eastern dwarf mistletoe in black spruce forests of Newfoundland. Forest Pathology 19 (5-6): 305-322. DOI: https://doi.org/10.1111/j.1439-0329.1989.tb00266.x.
  • Skórka P., Wojcik J. D. 2005. Population dynamics and social behavior of the Mistle Thrush Turdus viscivorus during winter. Acta Ornithologica 40: 35-42.
  • Sönmez T. 2014. Effect of Mistletoe on Growth of Scotch Pine (Pinus silvestris L.). Artvin Coruh University Journal of Forestry Faculty 15 (1): 64-72. DOI: https://doi.org/10.17474/acuofd.40147.
  • Stypiński P. T. 1997. Biologia i ekologia jemioły pospolitej (Viscum album, Viscaceae) w Polsce. Fragmenta Floristica et Geobotanika, seria Polonica Supll. 1: 1-117.
  • Teixeira-Costa L., Ceccantini G. 2015. Embolism increase and anatomical modifications caused by a parasitic plant: Phoradendron crassifolium (Santalaceae) on Tapirira guianensis (Anacardiaceae). IAWA Journal 36 (2): 138-151. DOI: https://doi.org/10.1163/22941932-00000091.
  • Thapa S. 2013. Detection and mapping of incidence of Viscum album in Pinus sylvestris forest of Southern French Alpe using satellite and airborne optical imagery. Thesis submitted to the Faculty of Geo-Information Science and Earth Observation of the University of Twente. https://itc.academia.edu/SunilThapa
  • Trumbore S., Brando P., Hartmann H. 2015. Forest health and global change. Science 349 (6250): 814-818. DOI: https://doi.org/10.1126/science.aac6759.
  • Tsopelas P., Angelopoulos A., Economou A., Soulioti N. 2004. Mistletoe (Viscum album) in the fir forest of Mount Parnis, Greece. Forest Ecology and Management 202 (1-3): 59-65. DOI: https://doi.org/10.1016/j.foreco.2004.06.032.
  • Tubeuf K. V. 1923. Monographie der Mistel. R. Oldenbourg, München.
  • Watson D. M. 2001. Mistletoe – A keystone resource in forests and woodlands worldwide. Annual Review of Ecology and Systematics 32: 219-249.
  • Wood B. W., Reilly C. C. 2004. Control of mistletoe in pecan trees. HortScience 39 (1): 110-114. DOI: https://doi.org/ 10.21273/HORTSCI.39.1.110.
  • Yan C. F., Gessler A., Rigling A., Dobbertin M., Han X. G., Li M. H. 2016. Effects of mistletoe removal on growth, N and C reserves, and carbon and oxygen isotope composition in Scots pine hosts. Tree Physiology 36: 562-575. DOI: https://doi.org/10.1093/treephys/tpw024.
  • Zuber D. 2004. Biological flora of Central Europe: Viscum album L. Flora – Morphology, Distribution, Functional Ecology of Plants 199 (3): 181-203. DOI: https://doi.org/10.1078/0367-2530-00147.
  • Zuber D., Widmer A. 2009. Phylogeography and host race differentiation in the European mistletoe (Viscum album L.). Molecular Ecology 18 (9): 1946-1962. DOI: https://doi.org/10.1111/j.1365-294X.2009.04168.x.
  • Zweifel R., Bangerter S., Rigling A., Sterck F. J. 2012. Pine and mistletoes: how to live with a leak in the water flow and storage system? Journal of Experimental Botany 63 (7): 2565-2578. DOI: https://doi.org/10.1093/ jxb/err432.

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