Εξώφυλλο

Pollen deposition processes and their significance for vegetation composition reconstructions = Διεργασίες απόθεσης γύρης και η σημασία τους στην ανασύσταση της παλαιοβλάστησης.

Aikaterini Nikolaos Polymeropoulou

Περίληψη


Reconstructions of past vegetation are crucial for a better understanding of past ecological and climatic changes. However, parameters like the climatic conditions, the geology, the depositional basins as well as the vegetation of an area can affect pollen production, dispersion and preservation. This creates doubt as to the accuracy to which the fossil pollen records can reflect the vegetation around a site. This problem can be approached by studying the correlation between present-day vegetation and surface samples that contain modern pollen assemblages. In this thesis, we studied multiple surface pollen samples from different areas and depositional environments in Greece. Then we performed statistical analysis of the pollen data as well as the biomization technique to evaluate how well they are reflecting the modern vegetation around each site. Furthermore, we compared the results from each site in order to evaluate which environment provides a more accurate depiction of the present-day vegetation. Finally, we confirmed that the ideal environments for a palaeoecological reconstruction are smaller basins such as temporal ponds and peat bogs. Also, it is of high importance to have a good spatial resolution by collecting multiple samples from various sites even in close proximity. Investigating how modern vegetation is reflected in surface modern pollen samples is key to a better and more accurate depiction of the paleoenvironment

Πλήρες Κείμενο:

PDF

Αναφορές


Abraham, V., Hicks, S., Svobodová-Svitavská, H., Bozilova, E., Panajiotidis, S., Filipova-Marinova, M., Jensen, C.E., et al. (2021), “Patterns in recent and Holocene pollen accumulation rates across Europe - The Pollen Monitoring Programme Database as a tool for vegetation reconstruction”, Biogeosciences, Copernicus Publications, Vol. 18 No. 15, pp. 4511–4534, doi: 10.5194/bg-18-4511-2021.

Alexouli-Livaditi, A., Livaditis, G. and Sachpazis, C. (1997), Geomorphological Investigation of the Drainage Network and Calculation of the Peak Storm Runoff (Qp) and Sediment Yield of Sarantopotamos and Katsimidi Streams.

Amami, B., Muller, S.D., Rhazi, L., Grillas, P., Rhazi, M. and Bouahim, S. (2010), “Modern pollen-vegetation relationships within a small Mediterranean temporary pool (western Morocco)”, Review of Palaeobotany and Palynology, Vol. 162 No. 2, pp. 213–225, doi: 10.1016/j.revpalbo.2010.06.012.

Anastasiadis, E., Seferlis, M. and Papadimos, D. (2005), “Lake Doiran, Functional analysis and proposed restoration measures”, Greek Biotope/Wetland Centre (ΕΚΒΥ), Society for Investigation and Conservation of Biodiversity and the Sustainable Development of Natural Ecosystems (BIOECO)., p. 72.

Aplada, E. (2003), Vegetation Zones and Ecological Evaluation of the Core of the National Park of Parnitha , Doctoral dissertation, MSc Thesis, University of Patras, Patras, Greece.

Azuara, J., Mazier, F., Lebreton, V., Sugita, S., Viovy, N. and Combourieu-Nebout, N. (2019), “Extending the applicability of the REVEALS model for pollen-based vegetation reconstructions to coastal lagoons”, Holocene, SAGE Publications Ltd, Vol. 29 No. 7, pp. 1109–1112, doi: 10.1177/0959683619838024.

Beaudouin, C., Suc, J.P., Escarguel, G., Arnaud, M. and Charmasson, S. (2007), “The significance of pollen signal in present-day marine terrigenous sediments: The example of the Gulf of Lions (western Mediterranean Sea)”, Geobios, Elsevier Masson SAS, Vol. 40 No. 2, pp. 159–172, doi: 10.1016/j.geobios.2006.04.003.

Beug, H.J. (2004), Leitfaden Der Pollenbestimmung Für Mitteleuropa Und Angrenzende Gebiete, 2nd ed., Verlag Dr. Friedrich Pfeil.

Bigelow, N.H., Brubaker, L.B., Edwards, M.E., Harrison, S.P., Prentice, I.C., Anderson, P.M., Andreev, A.A., et al. (2003), “Climate change and Arctic ecosystems: 1. Vegetation changes north of 55°N between the last glacial maximum, mid-Holocene, and present”, Journal of Geophysical Research: Atmospheres, John Wiley & Sons, Ltd, Vol. 108 No. D19, doi: https://doi.org/10.1029/2002JD002558.

Birks, H.J.B. and Birks, H.H. (1980), Quaternary Palaeoecology, University Park Press.

Bojovic, D., Ilieva, L. and Giupponi, C. (2016), Intergraded Water Resource Management at Dojran Lake in Macedonia, doi: 10.13140/RG.2.2.27462.27204. 75

Bonacci, O., Popovska, C. and Geshovska, V. (2015), “Analysis of transboundary Dojran Lake mean annual water level changes”, Environmental Earth Sciences, Springer Verlag, Vol. 73 No. 7, pp. 3177–3185, doi: 10.1007/s12665-014-3618-6.

Boutahar, A., Ouafaa, B., Cariñanos, P., Picone, R.M., Crisafulli, A., Mesa, J.M., Kadiri, M., et al. (2023), “Reconstructing past vegetation based on fossil and modern pollen data in Sougna mountain (Western Rif mountains - Northern Morocco)”, Review of Palaeobotany and Palynology, Elsevier B.V., Vol. 316, doi: 10.1016/j.revpalbo.2023.104936.

Bunting, M.J. (2002), “Detecting woodland remnants in cultural landscapes: Modern pollen deposition around small woodlands in northwest scotland”, Holocene, Vol. 12 No. 3, pp. 291–301, doi: 10.1191/0959683602hl545rp.

Bunting, M.J. (2008), “Pollen in wetlands: Using simulations of pollen dispersal and deposition to better interpret the pollen signal - A PolLandCal contribution”, Biodiversity and Conservation, Vol. 17, pp. 2079–2096, doi: 10.1007/s10531-007-9219-x.

Bunting, M.J., Gaillard, M.J., Sugita, S., Middleton, R. and Broström, A. (2004), “Vegetation structure and pollen source area”, Holocene, Vol. 14 No. 5, pp. 651–660, doi: 10.1191/0959683604hl744rp.

Čarni, A., Kostadinovski, M. and Matevski, V. (2003), “Species composition and syntaxonomic consideration of two communities of the Drabo-Cardaminion hirsutae in the southern part of the Republic of Macedonia”, Acta Botanica Croatica (Acta@biol.Pmf.Hr); Vol.62 No.1, Vol. 62.

Carrio, J.¤ S. (2002), A Taphonomic Study of Modern Pollen Assemblages from Dung and Surface Sediments in Arid Environments of Spain.

Cavoura, O., Mavrou, E. and Damikouka, I. (2023), “Microplastics in Yliki Lake, Greece: An Explorative Study”, MDPI AG, p. 112, doi: 10.3390/environsciproc2023026112.

Chalkia, E. and Kehayias, G. (2013), “Zooplankton community dynamics and environmental factors in Lake Ozeros (Greece)”, Mediterranean Marine Science, Vol. 14 No. 3, pp. 32–41, doi: 10.12681/mms.534.

Chester, P. and Raine, J. (2001), “Pollen and spore keys for Quaternary deposits in the northern Pindos Mountains, Greece”, Grana, Vol. 40, pp. 299–387, doi: 10.1080/00173130152987535.

Chmura, G.L. and Liu, K.-B. (1990), Pollen in the Lower Mississippi River.

Cordova, C.E., Harrison, S.P., Mudie, P.J., Riehl, S., Leroy, S.A.G. and Ortiz, N. (2009), “Pollen, plant macrofossil and charcoal records for palaeovegetation reconstruction in the Mediterranean-Black Sea Corridor since the Last Glacial Maximum”, Quaternary International, Vol. 197 No. 1–2, pp. 12–26, doi: 10.1016/j.quaint.2007.06.015.

Cundill, P.R., Austin, W.E.N. and Davies, S.E. (2006), “Modern pollen from the catchment and surficial sediments of a Scottish sea loch (fjord)”, Grana, Vol. 45 No. 3, pp. 230–238, doi: 10.1080/00173130600873919. 76

Dai, L., Weng, C., Lu, J. and Mao, L. (2014), “Pollen quantitative distribution in marine and fluvial surface sediments from the northern South China Sea: New insights into pollen transportation and deposition mechanisms”, Quaternary International, Elsevier Ltd, Vol. 325, pp. 136–149, doi: 10.1016/j.quaint.2013.09.031.

Dai, L. and Weng, C.Y. (2011), “A survey on pollen dispersal in the western Pacific Ocean and its paleoclimatological significance as a proxy for variation of the Asian winter monsoon”, Science China Earth Sciences, Vol. 54 No. 2, pp. 249–258, doi: 10.1007/s11430-010-4027-7.

Davis, B.A.S., Chevalier, M., Sommer, P., Carter, V.A., Finsinger, W., Mauri, A., Phelps, L.N., et al. (2020), “The Eurasian Modern Pollen Database (EMPD), version 2”, Earth System Science Data, Copernicus GmbH, Vol. 12 No. 4, pp. 2423–2445, doi: 10.5194/essd-12-2423-2020.

Davis, B.A.S., Zanon, M., Collins, P., Mauri, A., Bakker, J., Barboni, D., Barthelmes, A., et al. (2013), “The European Modern Pollen Database (EMPD) project”, Vegetation History and Archaeobotany, Springer New York LLC, Vol. 22 No. 6, pp. 521–530, doi: 10.1007/s00334-012-0388-5.

Delipetrou, P., Sarika, M., Michopoulos, P. and Karetsos, G. (2015), “Mountain grassland composition, structure, and ecology in Mt Oiti and Mt Kallidromo”, doi: 10.13140/RG.2.2.12199.55202.

Dimiza, M.D., Triantaphyllou, M. V., Portela, M., Koukousioura, O. and Karageorgis, A.P. (2022), “Response of Living Benthic Foraminifera to Anthropogenic Pollution and Metal Concentrations in Saronikos Gulf (Greece, Eastern Mediterranean)”, Minerals, MDPI, Vol. 12 No. 5, doi: 10.3390/min12050591.

Dinter, D.A. (1998), “Late Cenozoic extension of the Alpine collisional orogen, northeastern Greece: Origin of the north Aegean basin”, GSA Bulletin, Vol. 110 No. 9, pp. 1208–1230, doi: 10.1130/0016-7606(1998)110<1208:LCEOTA>2.3.CO;2.

Eastwood, W.J. (2004), 3. EAST MEDITERRANEAN VEGETATION AND CLIMATE CHANGE.

Ejarque, A., Miras, Y. and Riera, S. (2011), “Pollen and non-pollen palynomorph indicators of vegetation and highland grazing activities obtained from modern surface and dung datasets in the eastern Pyrenees”, Review of Palaeobotany and Palynology, Vol. 167 No. 1–2, pp. 123–139, doi: 10.1016/j.revpalbo.2011.08.001.

Elenga, H., Peyron, O., Bonnefille, R., Jolly, D., Cheddadi, R., Guiot, J., Andrieu, V., et al. (2000), “Pollen-based biome reconstruction for southern Europe and Africa 18,000 yr bp”, Journal of Biogeography, John Wiley & Sons, Ltd, Vol. 27 No. 3, pp. 621–634, doi: https://doi.org/10.1046/j.1365-2699.2000.00430.x.

Emberger, L. (1955), Une Classification Biogéographique Des Climats.

Faegri, K. and Iversen, J. (1989), Textbook of Pollen Analysis 4th Edition, 4th edition., Wiley.

Fremuth, W., Shumka, S., Lako, T., Dieterich, T., Shuka, L., Jankovic, M., Duma, O., et al. (2014), Book Prespa Final Vers 104022022. 77

Fyttis, G. (2012), Παρακολούθηση Της Οικολογικής Ποιότητας Των Λιμνοθαλασσών Κοτύχι & Πρόκοπος Της Δ. Ελλάδας : Ανάλυση Των Βιοκοινωνιών Των Υδρόβιων Μακρόφυτων Και Μακροασπόνδυλων Στα Πλαίσια Εφαρμογής Της Οδηγίας 2000/60/ΕΕ Για Τα Ύδατα, Master Thesis, University of Patras, Patras, Greece.

Glais, A., López-Sáez, J.A., Lespez, L. and Davidson, R. (2016), “Climate and human-environment relationships on the edge of the Tenaghi-Philippon marsh (Northern Greece) during the Neolithization process”, Quaternary International, Elsevier Ltd, Vol. 403, pp. 237–250, doi: 10.1016/j.quaint.2015.07.032.

Hollis, G.E. and Stevenson, A.C. (1997), “The physical basis of the Lake Mikri Prespa systems: geology, climate, hydrology and water quality”, in Crivelli, A.J. and Catsadorakis, G. (Eds.), Lake Prespa, Northwestern Greece: A Unique Balkan Wetland, Springer Netherlands, Dordrecht, pp. 1–19, doi: 10.1007/978-94-011-5180-1_1.

Iliopoulos, G., Emmanouilidis, A., Katsaros, D., Papadopoulou, P. and Avramidis, P. (2015), “Palaeoecological Evidence for a Declining Shallow Coastal Lagoon, Prokopos Lagoon, Western Greece”, 15th International Multidisciplinary Scientific Conferences SGEM2015, pp. 369–375.

Janssen, C.R., Punt, W. and Reitsma, T. (2006), “Introduction : The Northwest European pollen flora”.

Kambezidis, H.D., Weidauer, D., Melas, D. and Ulbricht, M. (1998), “Air quality in the Athens basin during sea breeze and non-sea breeze days using laser-remote-sensing technique”, Atmospheric Environment, Pergamon, Vol. 32 No. 12, pp. 2173–2182, doi: 10.1016/S1352-2310(97)00409-3.

Karkanas, P., Pavlopoulos, K., Kouli, K., Ntinou, M., Tsartsidou, G., Facorellis, Y. and Tsourou, T. (2011), “Palaeoenvironments and site formation processes at the Neolithic lakeside settlement of Dispilio, Kastoria, Northern Greece”, Geoarchaeology, John Wiley and Sons Inc, Vol. 26 No. 1, pp. 83–117, doi: 10.1002/gea.20338.

Katsaros, D. (2014), Μελέτη Των Ιζηματολογικών Χαρακτηριστικών Και Των Φυσικοχημικών Παραμέτρων Των Υδάτων Της Λιμνοθάλασσας Πρόκοπος - Δυτική Ελλάδα, Master Thesis, University of Patras, Patras, Greece, June.

Kehayias, G., Chalkia, E. and Doulka, E. (2014), Zooplankton : Species Diversity, Distribution and Seasonal Dynamics.

King, J.E., Klippel, W.E. and Duffield, R. (1975), Society for American Archaeology Pollen Preservation and Archaeology in Eastern North, Source: American Antiquity, Vol. 40.

Koukousioura, O., Georgiou, S., Dimiza, M., Avramidis, P. and Triantaphyllou, M. (2023), “EGU22-7087, updated on Seasonal benthic foraminifera response to the complex physicochemical conditions of the semi-enclosed Thermaikos Gulf (NW Aegean Sea)”, doi: 10.5194/egusphere-egu22-7087. 78

Kouli, K. (2020), “Tracing human impact on a mountainous plant landscape in Rhodopi Mt (N. Greece) during the last 1100 years”, Revue de Micropaleontologie, Elsevier Masson SAS, Vol. 68, doi: 10.1016/j.revmic.2020.100442.

Kyrikou, S., Kouli, K., Triantaphyllou, M. V., Dimiza, M.D., Gogou, A., Panagiotopoulos, I.P., Anagnostou, C., et al. (2020), “Late Glacial and Holocene vegetation patterns of Attica: A high-resolution record from Elefsis Bay, southern Greece”, Quaternary International, Elsevier Ltd, Vol. 545, pp. 28–37, doi: 10.1016/j.quaint.2019.05.020.

Lekkas, E. (2001), “The Athens earthquake (7 September 1999): intensity distribution and controlling factors”.

Lisitsyna, O. V., Hicks, S. and Huusko, A. (2012), “Do moss samples, pollen traps and modern lake sediments all collect pollen in the same way? A comparison from the forest limit area of northernmost Europe”, Vegetation History and Archaeobotany, Vol. 21 No. 3, pp. 187–199, doi: 10.1007/s00334-011-0335-x.

Liu, Y., Ogle, K., Lichstein, J.W. and Jackson, S.T. (2022), “Estimation of pollen productivity and dispersal: How pollen assemblages in small lakes represent vegetation”, Ecological Monographs, Ecological Society of America, Vol. 92 No. 3, doi: 10.1002/ecm.1513.

Lopez-Saez, J.A., Alba-sánchez, F., López-merino, L. and Pérez-díaz, S. (2010), “Modern pollen analysis: a reliable tool for discriminating Quercus rotundifolia communities in Central Spain”, doi: 10.1127/0340.

Luo, C., Chen, M., Xiang, R., Liu, J., Zhang, L., Lu, J. and Yang, M. (2013), “Characteristics of modern pollen distribution in surface sediment samples for the northern South China Sea from three transects”, Quaternary International, Vol. 286, pp. 148–158, doi: 10.1016/j.quaint.2012.11.001.

Lykousis, V., Karageorgis, A.P. and Chronis, G.T. (2005), “Delta progradation and sediment fluxes since the last glacial in the Thermaikos Gulf and the Sporades Basin, NW Aegean Sea, Greece”, Marine Geology, Elsevier, Vol. 222–223 No. 1–4, pp. 381–397, doi: 10.1016/J.MARGEO.2005.06.026.

Marinova, E., Harrison, S.P., Bragg, F., Connor, S., de Laet, V., Leroy, S.A.G., Mudie, P., et al. (2018), “Pollen-derived biomes in the Eastern Mediterranean–Black Sea–Caspian-Corridor”, Journal of Biogeography, Blackwell Publishing Ltd, Vol. 45 No. 2, pp. 484–499, doi: 10.1111/jbi.13128.

Marret, F., O’Keefe, J., Osterloff, P., Pound, M. and Shumilovskikh, L. (2021), Applications of Non-Pollen Palynomorphs: From Palaeoenvironmental Reconstructions to

Biostratigraphy, Geological Society of London, doi: 10.1144/SP511.

Martin, P.S. (1963), The Last 10,000 Years: A Fossil Pollen Record of the American Southwest, University of Arizona Press, doi: 10.2307/j.ctv25wxbqc.

Masi, A., Francke, A., Pepe, C., Thienemann, M., Wagner, B. and Sadori, L. (2018), “Vegetation history and paleoclimate at Lake Dojran (FYROM/Greece) during the Late Glacial and Holocene”, Climate of the Past, Copernicus GmbH, Vol. 14 No. 3, pp. 351–367, doi: 10.5194/cp-14-351-2018. 79

Matzinger, A., Jordanoski, M., Veljanoska-Sarafiloska, E., Sturm, M., Müller, B. and Wüest, A. (2006), “Is Lake Prespa Jeopardizing the Ecosystem of Ancient Lake Ohrid?”, Hydrobiologia, Vol. 553 No. 1, pp. 89–109, doi: 10.1007/s10750-005-6427-9.

Montade, V., Nebout, N.C., Kissel, C. and Mulsow, S. (2011), “Pollen distribution in marine surface sediments from Chilean Patagonia”, Marine Geology, Vol. 282 No. 3–4, pp. 161–168, doi: 10.1016/j.margeo.2011.02.001.

Moore, P.D., Webb, J.A. and Collinson, M.E. (1991), Pollen Analysis, Blackwell Scientific Publications.

Mudie, P.J. and Mccarthy, F.M.G. (1994), Late Quaternary Pollen Transport Processes, Western North Atlantic: Data from Box Models, Cross-Margin and N-S Transects, Marine Geology, Vol. 118.

de Nascimento, L., Nogué, S., Fernández-Lugo, S., Méndez, J., Otto, R., Whittaker, R.J., Willis, K.J., et al. (2015), “Modern pollen rain in Canary Island ecosystems and its implications for the interpretation of fossil records”, Review of Palaeobotany and Palynology, Elsevier, Vol. 214, pp. 27–39, doi: 10.1016/j.revpalbo.2014.11.002.

Naughton, F., Sanchez Goñi, M.F., Desprat, S., Turon, J.L., Duprat, J., Malaizé, B., Joli, C., et al. (2007), “Present-day and past (last 25 000 years) marine pollen signal off western Iberia”, Marine Micropaleontology, Elsevier B.V., Vol. 62 No. 2, pp. 91–114, doi: 10.1016/j.marmicro.2006.07.006.

Panagiotopoulos, K., Aufgebauer, A., Schäbitz, F. and Wagner, B. (2013), “Vegetation and climate history of the Lake Prespa region since the Lateglacial”, Quaternary International, Vol. 293, pp. 157–169, doi: 10.1016/j.quaint.2012.05.048.

Panagos, A., Conispoliatis, N. and Varnavas, S. (1989), “Texture and composition of the lake Kastoria sediments”, Annales Géologiques Des Pays Helléniques, Vol. 34, pp. 105–122.

Papanikolaou, D., Lykousis, V., Chronis, G. and Pavlakis, P. (1988), “A comparative study of neotectonic basins across the Hellenic arc: the Messiniakos, Argolikos, Saronikos and Southern Evoikos Gulfs”, Basin Research, Vol. 1, pp. 167–168.

Papazisimou, S., Bouzinos, A., Christanis, K., Tzedakis, P.C. and Kalaitzidis, S. (2002), “The upland holocene transitional mires of Elatia forest, northern Greece”, Wetlands, Vol. 22

No. 2, pp. 355–365, doi: 10.1672/0277-5212(2002)022[0355:TUHTMO]2.0.CO;2.

Pavlides, G. (1997), “The flora of Prespa National Park with emphasis on species of conservation interest”, Hydrobiologia, Vol. 351 No. 1, pp. 35–40, doi: 10.1023/A:1003083618588.

Pirini, C.B., Tsiripidis, I. and Bergmeier, E. (2014), “Steppe-like grass land vegetation in the hills around the lakes of Vegoritida and Petron, North-Central Greece”, Hacquetia, Slovenian Academy of Sciences and Arts, Vol. 13 No. 1, pp. 121–169, doi: 10.2478/hacq-2014-0002.

Pisaric, M.F.J., Macdonald, G.M., Cwynar, L.C. and Velichko, A.A. (2001), Modern Pollen and Conifer Stomates from North-Central Siberian Lake Sediments: Their Use in Interpreting Late Quaternary Fossil Pollen Assemblages, Arctic, Antarctic, and Alpine Research, Vol. 33. 80

Polunin, O. (1987), Flowers of Greece and the Balkans, a Field Guide, Vol. 1.

Poulos, S.E., Chronis, G.T., Collins, M.B. and Lykousis, V. (2000a), “Thermaikos Gulf Coastal System, NW Aegean Sea: an overview of water/sediment fluxes in relation to air–

land–ocean interactions and human activities”, Journal of Marine Systems, Elsevier, Vol. 25 No. 1, pp. 47–76, doi: 10.1016/S0924-7963(00)00008-7.

Poulos, S.E., Chronis, G.T., Collins, M.B. and Lykousis, V. (2000b), “Thermaikos Gulf coastal system, NW Aegean Sea: An overview of water/sediment fluxes in relation to air-land-ocean interactions and human activities”, Journal of Marine Systems, Vol. 25 No. 1, pp. 47–76, doi: 10.1016/S0924-7963(00)00008-7.

Prentice, C., Guiot, J., Huntley, B., Jolly, D. and Cheddadi, R. (1996), “Reconstructing biomes from palaeoecological data: a general method and its application to European pollen data at 0 and 6 ka”, Climate Dynamics, Vol. 12 No. 3, pp. 185–194, doi: 10.1007/BF00211617.

Prentice, I.C. (1983), Pollen Mapping of Regional Vegetation Patterns in South and Central Sweden, Source: Journal of Biogeography, Vol. 10.

Prentice’, I.C. (1985), Pollen Representation, Source Area, and Basin Size: Toward a Unified Theory of Pollen Analysis, QUATERNARY RESEARCH, Vol. 23.

Räsänen, S., Hicks, S. and Odgaard, B.V. (2004), “Pollen deposition in mosses and in a modified ‘Tauber trap’ from Hailuoto, Finland: What exactly do the mosses record?”, Review of Palaeobotany and Palynology, Vol. 129 No. 1–2, pp. 103–116, doi: 10.1016/j.revpalbo.2003.12.001.

Sakellariou, N.K. and Kambezidis, H.D. (2000), “Mean monthly air temperatures in Athens, Greece”, Theoretical and Applied Climatology, Vol. 67 No. 3–4, pp. 201–203, doi: 10.1007/s007040070009.

Shen, C., Liu, K.B., Tang, L. and Overpeck, J.T. (2021), “Modern Pollen Rain in the Tibetan Plateau”, Frontiers in Earth Science, Frontiers Media S.A., Vol. 9, doi: 10.3389/feart.2021.732441.

Spieksma, F., Nikkels, B.H. and Bottema, S. (1994), REVIEW OF PALAEOBOTANY AND PALYNOLOGY Relationship between Recent Pollen Deposition and Airborne Pollen Concentration, Review of Palaeobotany and Palynology, Vol. 82.

Sugita, S. (1993), “A Model of Pollen Source Area for an Entire Lake Surface”, Quaternary Research, Vol. 39, pp. 239–244.

Sugita, S. (1994), Pollen Representation of Vegetation in Quaternary Sediments: Theory and Method in Patchy Vegetation, Source: Journal of Ecology, Vol. 82.

Tarasov, P.E., Volkova, V.S., Webb III, T., Guiot, J., Andreev, A.A., Bezusko, L.G., Bezusko, T. V, et al. (2000), “Last glacial maximum biomes reconstructed from pollen and plant macrofossil data from northern Eurasia”, Journal of Biogeography, John Wiley & Sons, Ltd, Vol. 27 No. 3, pp. 609–620, doi: https://doi.org/10.1046/j.1365-2699.2000.00429.x. 81

Theodoropoulos, K., Eleftheriadou, E. and Athanasiadis, N. (2010), “Range Science and Life Quality”, in Sidiropoulou, A., Matzanas, K. and Ispikoudis, I. (Eds.), Proceedings of the 7th Panhellenic Rangeland Congress in Xanthi, Xanthi, pp. 77–83.

Tonkov, S., Hicks, S., Bozilova, E. and Atanassova, J. (2001), Pollen Monitoring in the Central Rila Mountains, Southwestern Bulgaria: Comparisons between Pollen Traps and Surface Samples for the Period 1993±1999.

Valle, F., Furlanetto, G., Maggi, V., Pini, R. and Ravazzi, C. (2021), “Concepts and methodology to quantitatively reconstruct climate from pollen data”, Geografia Fisica e Dinamica Quaternaria, Comitato Glaciologico Italiano, Vol. 42 No. 2, pp. 225–234, doi: 10.4461/GFDQ.2019.42.12.

Vermoere, M., Vanhecke, L., Waelkens, M. and Smets, E. (2000), “A comparison between modern pollen spectra of moss cushions and Cundill pollen traps: Implications for the interpretation of fossil pollen data from Southwest Turkey”, Grana, Vol. 39 No. 2–3, pp. 146–158, doi: 10.1080/001731300300045328.

Waller, M., Grant, M.J. and Bunting, M.J. (2012), “Modern pollen studies from coppiced woodlands and their implications for the detection of woodland management in Holocene pollen records”, Review of Palaeobotany and Palynology, Vol. 187, pp. 11–28, doi: 10.1016/j.revpalbo.2012.08.008.

Weiberg, E., Bevan, A., Kouli, K., Katsianis, M., Woodbridge, J., Bonnier, A., Engel, M., et al. (2019), “Long-term trends of land use and demography in Greece: A comparative study”, Holocene, SAGE Publications Ltd, Vol. 29 No. 5, pp. 742–760, doi: 10.1177/0959683619826641.

Yang, S., Liu, K. biu, Yi, S., Ye, S., Li, J., Yuan, H., Zhao, G., et al. (2016), “Distribution and provenance of modern pollen and spores in the surface sediments of Liaodong Bay, China”, Marine Geology, Elsevier B.V., Vol. 376, pp. 1–14, doi: 10.1016/j.margeo.2016.03.004.

Zacharias, I., Bertachas, I., Skoulikidis, N. and Koussouris, T. (2002), “Greek Lakes: Limnological overview”, Lakes & Reservoirs: Science, Policy and Management for Sustainable Use, John Wiley & Sons, Ltd, Vol. 7 No. 1, pp. 55–62, doi: https://doi.org/10.1046/j.1440-1770.2002.00171.x.

Zonneveld, K.A.F. and Pospelova, V. (2015), “A determination key for modern dinoflagellate cysts”, Palynology, Taylor & Francis, Vol. 39 No. 3, pp. 387–409, doi: 10.1080/01916122.2014.990115.

Zotos, A., Raus, T. and Dimopoulos, P. (2007), “New floristic reports from the lakes Trichonis and Lisimachia (W Greece)”, Willdenowia, Botanic Garden & Botanical Museum Berlin-Dahlem BGBM, Vol. 36 No. 2, p. 731, doi: 10.3372/wi.36.36208.

Ασημακόπουλος, Ι., Καλαϊτζή, Ξ., Σιταρένιου, Β., Στρατηγέα, Ν., Μπορτζίκου, Γ., Παπακωνσταντίνου, Δ. and Σταματοπούλου, Ε. (1996), Ειδικη Περιβαλλοντική Μελετη Λιμνοθάλασσας Κοτυχίου - Δάσους ΢τροφυλιάς.

Καρέτσος, Γ., Τρίγκας, Π. and Τσαγκάρη, Κ. (2014), Χλωρίδα Της Οίτης, Ενδημικά Και Σπάνια Είδη, Ινστιτούτο Μεσογειακών Δασικών Οικοσυστημάτων, Ελληνικός Γεωργικός Οργανισμός “Δήμητρα”, Αθήνα. 82

Κατσιμίγας, Κ. (2007), “Το φυσικό περιβάλλον της Κομοτηνής και της περιφέρειάς της”, Https://Www.Paratiritis-News.Gr/News/to-Fysiko-Perivallon-Tis-Komotinis-Kai-Tis-Perifereias-Tis/.

Κουμπλή-Σοβατζή, Λ. (1983), Έρευνες Στα Τραχειόφυτα Των Λιμνών Και Άλλων Υδροβιοτόπων Της Αιτωλοακαρνανίας. Ταξινομική, Χλωριδική, Φυτογεωγραφική, Οικολογική Μελέτη, Διδακτορική διατριβή, Αθήνα.

Κουσούρης, Θ. (2015), Οι Λίμνες Στην Ελλάδα, "Λιμνών Καταγραφές & Μαρτυρίες.

Μαυρομμάτης, Γ. (1980), Το Βιοκλίμα Της Ελλάδος: Σχέσεις Κλίματος Και Φυσικής Βλαστήσεως - Βιοκλιματικοί Χάρτες, Vol. 1, Ίδρυμα Δασικών Ερευνών Αθηνών, Αθήνα.

Websites

Hellenic National Meteorological Service. Climate atlas, available at: http://climatlas.hnms.gr/

NatureBank - Βιότοπος natura - Oros Panaitoliko. Available at: https://filotis.itia.ntua.gr/biotopes/c/GR2310004/

Non-Pollen Palynomorph Image Database. Available at: http://non-pollen-palynomorphs.uni-goettingen.de/

PalDat - Palynological Database. Available at: https://www.paldat.org/

Society for the Protection of Prespa. Available at: https://spp.gr/what-we-do/species/#plants

Διατήρηση Δασών και Δασικών Ανοιγμάτων Προτεραιότητας στον Εθνικό Δρυμό Οίτης και στο Όρος Καλλίδρομο της Στερεάς Ελλάδας, LIFE11 NAT/GR/1014 - “ForOpenForests”

(2015) ΔΡΑΣΗ Α.2 Γεωπεριβαλλοντική, υδρολογική και γεωχημική μελέτη των εποχικών λιμνίων (3170*). Available at: https://www.foropenforests.org/sites/foropenforests.org/files/reports/A2_UoA_MONITORING%20PROTOCOL.pdf.

Δήμος Πρεσπών, Πρωτογενής Τομέας, 2015. Available at: https://www.prespes.gr/prespa/index.php/en/2015-05-10-16-03-43

Η φυσική βλάστηση και τα χαρακτηριστικά είδη χλωρίδας περιμετρικά του Κορινθιακού κόλπου (2024). Available at: https://www.korinthiakos.info/content/%CF%87%CE%BB%CF%89%CF%81%CE%AF%CE%B4%CE%B1.

Λίμνες Βεγορίτιδας και πετρών - Ο.ΦΥ.ΠΕ.Κ.Α. (2023) Ο.ΦΥ.ΠΕ.Κ.Α. - Οργανισμός Φυσικού Περιβάλλοντος και Κλιματικής Αλλαγής. Available at: https://necca.gov.gr/apeiloumena-eidi/limnes-vegoritidas-kai-petron-gr1340004/ 83

Λιμνοθάλασσα Έλους Ροδόπης, Naturagraeca: Ένας οδηγός για την άγρια φύση της Ελλάδας. Available at: https://www.naturagraeca.com/ws/129,191,332,1,1,%CE%9B%CE%B9%CE%BC%CE%BD%CE%BF%CE%B8%CE%AC%CE%BB%CE%B1%CF%83%CF%83%CE%B1-%CE%88%CE%BB%CE%BF%CF%85%CF%82-%CE%A1%CE%BF%CE%B4%CF%8C%CF%80%CE%B7%CF%82

Μ.Δ. Εθνικού Πάρκου Στροφυλιάς και Προστατευόμενων Περιοχών δυτικής Πελοποννήσου - Ο.ΦΥ.ΠΕ.Κ.Α. (2023) Ο.ΦΥ.ΠΕ.Κ.Α. - Οργανισμός Φυσικού Περιβάλλοντος και

Κλιματικής Αλλαγής. Available at: https://necca.gov.gr/mdpp/m-d-ethnikou-parkou-ygrotopon-kotychiou-strofylias-kai-prostatevomenon-periochon-dytikis-peloponnisou/#Fisiko-Perivallon

Μ.Δ. Εθνικού Πάρκου Στροφυλιάς και Προστατευόμενων Περιοχών δυτικής Πελοποννήσου - Ο.ΦΥ.ΠΕ.Κ.Α. (2023) Ο.ΦΥ.ΠΕ.Κ.Α. - Οργανισμός Φυσικού Περιβάλλοντος και

Κλιματικής Αλλαγής. . Available at: https://strofylianationalpark.gr/%CE%BC%CE%B1%CF%8D%CF%81%CE%B1-%CE%B2%CE%BF%CF%85%CE%BD%CE%AC/

Επαγγελματικό και Βιοτεχνικό Επιμελητήριο Ροδόπης, Νομός Ροδόπης. Available at: https://www.everodopi.gr/pages/details/80/nomos-rodopis

Στατιστικά καλλιεργειών νομού Φλωρίνης, 2023. Available at: http://www.gaiapedia.gr/gaiapedia/index.php/%CE%A3%CF%84%CE%B1%CF%84%CE%B9%CF%83%CF%84%CE%B9%CE%BA%CE%AC_%CE%BA%CE%B1%CE%BB%CE%BB%CE%B9%CE%B5%CF%81%CE%B3%CE%B5%CE%B9%CF%8E%CE%BD_%CE%BD%CE%BF%CE%BC%CE%BF%CF%8D_%CE%A6%CE%BB%CF%89%CF%81%CE%AF%CE%BD%CE%B7%CF%82

Φ.Δ.Ο.Ρ. Φορέας Διαχείρισης Οροσειράς Ροδόπης - Χλωρίδα. Available at: https://fdor.gr/index.php/rodopi-mountain-range-national-park/biodiversity/flora


Εισερχόμενη Αναφορά

  • Δεν υπάρχουν προς το παρόν εισερχόμενες αναφορές.