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Climate-Change Impacts on the Southernmost Mediterranean Arctic-Alpine Plant Populations

Author

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  • Konstantinos Kougioumoutzis

    (Laboratory of Botany, Department of Biology, University of Patras, 26504 Patras, Greece
    These authors contributed equally to this work.)

  • Ioannis P. Kokkoris

    (Laboratory of Botany, Department of Biology, University of Patras, 26504 Patras, Greece
    These authors contributed equally to this work.)

  • Arne Strid

    (Bakkevej 6, DK-5853 Ørbæk, Denmark)

  • Thomas Raus

    (Botanischer Garten und Botanisches Museum Berlin-Dahlem, Freie Universität Berlin, 14195 Berlin, Germany)

  • Panayotis Dimopoulos

    (Laboratory of Botany, Department of Biology, University of Patras, 26504 Patras, Greece)

Abstract

Human-induced climate- and land-use change have been affecting biogeographical and biodiversity patterns for the past two centuries all over the globe, resulting in increased extinction and biotic homogenization rates. High mountain ecosystems are more sensitive to these changes, which have led to physiological and phenological shifts, as well as to ecosystem processes’ deformation. Glacial relicts, such as arctic-alpine taxa, are sensitive indicators of the effects of global warming and their rear-edge populations could include warm-adapted genotypes that might prove—conservation-wise—useful in an era of unprecedented climate regimes. Despite the ongoing thermophilization in European and Mediterranean summits, it still remains unknown how past and future climate-change might affect the distributional patterns of the glacial relict, arctic-alpine taxa occurring in Greece, their European southernmost distributional limit. Using species distribution models, we investigated the impacts of past and future climate changes on the arctic-alpine taxa occurring in Greece and identified the areas comprising arctic-alpine biodiversity hotspots in Greece. Most of these species will be faced with severe range reductions in the near future, despite their innate resilience to a multitude of threats, while the species richness hotspots will experience both altitudinal and latitudinal shifts. Being long-lived perennials means that there might be an extinction-debt present in these taxa, and a prolonged stability phase could be masking the deleterious effects of climate change on them. Several ex situ conservation measures (e.g., seed collection, population augmentation) should be taken to preserve the southernmost populations of these rare arctic-alpine taxa and a better understanding of their population genetics is urgently needed.

Suggested Citation

  • Konstantinos Kougioumoutzis & Ioannis P. Kokkoris & Arne Strid & Thomas Raus & Panayotis Dimopoulos, 2021. "Climate-Change Impacts on the Southernmost Mediterranean Arctic-Alpine Plant Populations," Sustainability, MDPI, vol. 13(24), pages 1-23, December.
  • Handle: RePEc:gam:jsusta:v:13:y:2021:i:24:p:13778-:d:701809
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    References listed on IDEAS

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    1. Olivier Cotto & Johannes Wessely & Damien Georges & Günther Klonner & Max Schmid & Stefan Dullinger & Wilfried Thuiller & Frédéric Guillaume, 2017. "A dynamic eco-evolutionary model predicts slow response of alpine plants to climate warming," Nature Communications, Nature, vol. 8(1), pages 1-9, August.
    2. Koo, Kyung Ah & Kong, Woo-Seok & Park, Seon Uk & Lee, Joon Ho & Kim, Jaeuk & Jung, Huicheul, 2017. "Sensitivity of Korean fir (Abies koreana Wils.), a threatened climate relict species, to increasing temperature at an island subalpine area," Ecological Modelling, Elsevier, vol. 353(C), pages 5-16.
    3. Tomislav Hengl & Jorge Mendes de Jesus & Gerard B M Heuvelink & Maria Ruiperez Gonzalez & Milan Kilibarda & Aleksandar Blagotić & Wei Shangguan & Marvin N Wright & Xiaoyuan Geng & Bernhard Bauer-Marsc, 2017. "SoilGrids250m: Global gridded soil information based on machine learning," PLOS ONE, Public Library of Science, vol. 12(2), pages 1-40, February.
    4. Stefan Dullinger & Andreas Gattringer & Wilfried Thuiller & Dietmar Moser & Niklaus E. Zimmermann & Antoine Guisan & Wolfgang Willner & Christoph Plutzar & Michael Leitner & Thomas Mang & Marco Caccia, 2012. "Extinction debt of high-mountain plants under twenty-first-century climate change," Nature Climate Change, Nature, vol. 2(8), pages 619-622, August.
    5. Barnabas H. Daru & Harith Farooq & Alexandre Antonelli & Søren Faurby, 2020. "Endemism patterns are scale dependent," Nature Communications, Nature, vol. 11(1), pages 1-11, December.
    6. Costanza Geppert & Giorgio Perazza & Robert J. Wilson & Alessio Bertolli & Filippo Prosser & Giuseppe Melchiori & Lorenzo Marini, 2020. "Consistent population declines but idiosyncratic range shifts in Alpine orchids under global change," Nature Communications, Nature, vol. 11(1), pages 1-11, December.
    7. Wilfried Thuiller & Sébastien Lavergne & Cristina Roquet & Isabelle Boulangeat & Bruno Lafourcade & Miguel. B. Araujo, 2011. "Consequences of climate change on the tree of life in Europe," Nature, Nature, vol. 470(7335), pages 531-534, February.
    8. Luis-Miguel Chevin & Russell Lande & Georgina M Mace, 2010. "Adaptation, Plasticity, and Extinction in a Changing Environment: Towards a Predictive Theory," PLOS Biology, Public Library of Science, vol. 8(4), pages 1-8, April.
    9. Luis-Miguel Chevin & Russell Lande & Georgina M Mace, 2010. "Adaptation, Plasticity, and Extinction in a Changing Environment: Towards a Predictive Theory," Working Papers id:2494, eSocialSciences.
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    1. Ioannis P. Kokkoris & Konstantinos Kougioumoutzis & Ioannis Charalampopoulos & Ektor Apostolidis & Ilias Apostolidis & Arne Strid & Panayotis Dimopoulos, 2023. "Conservation Responsibility for Priority Habitats under Future Climate Conditions: A Case Study on Juniperus drupacea Forests in Greece," Land, MDPI, vol. 12(11), pages 1-17, October.
    2. Konstantinos Kougioumoutzis & Maria Tsakiri & Ioannis P. Kokkoris & Panayiotis Trigas & Gregoris Iatrou & Fotini N. Lamari & Dimitris Tzanoudakis & Eleni Koumoutsou & Panayotis Dimopoulos & Arne Strid, 2024. "Assessing the Vulnerability of Medicinal and Aromatic Plants to Climate and Land-Use Changes in a Mediterranean Biodiversity Hotspot," Land, MDPI, vol. 13(2), pages 1-29, January.
    3. Konstantinos Kougioumoutzis & Alexandros Papanikolaou & Ioannis P. Kokkoris & Arne Strid & Panayotis Dimopoulos & Maria Panitsa, 2022. "Climate Change Impacts and Extinction Risk Assessment of Nepeta Representatives (Lamiaceae) in Greece," Sustainability, MDPI, vol. 14(7), pages 1-15, April.

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