Holocene summer and winter temperature trends and excursions in East-Central Europe from Carpathian pollen records

This study reconstructs summer and winter temperatures for East-Central Europe (ECE) over the last 12 ka using pollen records from five mid-altitude sites in the Carpathian Mountains. Seasonal reconstructions were combined into composite records and statistically evaluated to identify significant long-term trends and short-term excursions. Both seasons reveal strong Early Holocene warming, followed by contrasting trajectories. Summer temperatures peaked at 7.2 ka (1.4 °C above Holocene mean) and then gradual declined, whereas winter temperatures continued rising until a Late Holocene maximum at 2.1 ka (1.7 °C above Holocene mean) before decreasing during the last two millennia. These opposing trends indicate a progressive reduction in continentality across ECE over the last 6 ka. The 8.2 ka event represents the only statistically significant short-term excursion, with a cooling of 2 °C in summer and 2.4 °C in winter. Comparison with independent proxy records and climate model simulations shows broad agreement with reconstructed pattern of Holocene seasonal temperature evolution.

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Publication Details

Journal
Communications Earth & Environment
Published
2026-09-14
DOI
https://doi.org/10.1038/s43247-026-04041-6
Primary Topic
Geology and Paleoclimatology Research
Type
article
Field-Weighted Citation Impact
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article

Holocene summer and winter temperature trends and excursions in East-Central Europe from Carpathian pollen records

Heikki Seppä, Jon Camuera, Enikő K. Magyari, János Korponai et al.
Communications Earth & Environment
Geology and Paleoclimatology Research
article

Holocene summer and winter temperature trends and excursions in East-Central Europe from Carpathian pollen records

Heikki Seppä, Jon Camuera, Enikő K. Magyari, János Korponai, Lu Chenao, Niina Kuosmanen, Yuanhao Xu, Abigail A. Ofosu-Brakoh
article en

Abstract

This study reconstructs summer and winter temperatures for East-Central Europe (ECE) over the last 12 ka using pollen records from five mid-altitude sites in the Carpathian Mountains. Seasonal reconstructions were combined into composite records and statistically evaluated to identify significant long-term trends and short-term excursions. Both seasons reveal strong Early Holocene warming, followed by contrasting trajectories. Summer temperatures peaked at 7.2 ka (1.4 °C above Holocene mean) and then gradual declined, whereas winter temperatures continued rising until a Late Holocene maximum at 2.1 ka (1.7 °C above Holocene mean) before decreasing during the last two millennia. These opposing trends indicate a progressive reduction in continentality across ECE over the last 6 ka. The 8.2 ka event represents the only statistically significant short-term excursion, with a cooling of 2 °C in summer and 2.4 °C in winter. Comparison with independent proxy records and climate model simulations shows broad agreement with reconstructed pattern of Holocene seasonal temperature evolution.

Communications Earth & Environment
Eötvös Loránd University (HU), Ludovika University of Public Service (HU), University of Helsinki (FI), Sun Yat-sen University (CN), Instituto Andaluz de Ciencias de la Tierra (ES), Institute for Political Sciences (HU), Sapientia Hungarian University of Transylvania (RO)
European Commission, Consejería de Economía, Innovación, Ciencia y Empleo, Junta de Andalucía, Junta de Andalucía, Horizon 2020 Framework Programme
Climate action
Openalex Percentile: Top 16%
Geology and Paleoclimatology Research
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