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Consistent response of European summers to the latitudinal temperature gradient over the Holocene

Author

Listed:
  • Celia Martin-Puertas

    (Royal Holloway University of London, Department of Geography)

  • Laura Boyall

    (Royal Holloway University of London, Department of Geography
    Bangor University, School of Ocean Sciences)

  • Armand Hernandez

    (Universidade de Coruña, GRICA-BIOpast Group, Centro Interdisciplinar de Química e Bioloxía (CICA), Faculty of Sciences)

  • Antti E. K. Ojala

    (University of Turku, Department of Geography and Geology
    Geological Survey of Finland)

  • Ashley Abrook

    (University of Southampton, School of Geography and Environmental Science, School of Ocean and Earth Science)

  • Emilia Kosonen

    (Geological Survey of Finland)

  • Paul Lincoln

    (Royal Holloway University of London, Department of Geography
    King’s College London, Department of Geography)

  • Valentin Portmann

    (Environnements et Paléoenvironnements Océaniques et Continentaux (EPOC) Univ. Bordeaux, CNRS, Bordeaux INP, EPOC)

  • Didier Swingedouw

    (Environnements et Paléoenvironnements Océaniques et Continentaux (EPOC) Univ. Bordeaux, CNRS, Bordeaux INP, EPOC)

Abstract

The drivers behind the current decadal trend toward longer and more extreme European summers are widely discussed. This is attributed to changes in the mid-latitude summer atmospheric circulation in response to Arctic Amplification and weakening of the latitudinal temperature gradients (LTGs), as well as to reduced aerosol emissions over Europe since the 1980s. However, causal links remain uncertain, limiting confidence in future projections. To gain statistical insights, evidence over periods longer than the instrumental record is necessary. Using seasonally resolved lake sediments, we reconstruct the evolution of the European summer-to-annual ratio over the last ten millennia. Our results indicate that summer weather dominated during the mid-Holocene, with an average of 195 summer days per year—falling within the extreme upper tail of summer distributions in the early- and late-Holocene. The Holocene variability in summer days aligns closely with simulated past changes in the LTG, supporting the hypothesis that dynamical processes influence mid-latitude seasonal weather on decadal to millennial timescales. A 1 °C decrease in LTG would extend the summer season by ~6 days, potentially adding up to 42 summer days by 2100 under a business-as-usual scenario. These findings provide key observational constraints for understanding and projecting seasonal impacts on ecosystems and society.

Suggested Citation

  • Celia Martin-Puertas & Laura Boyall & Armand Hernandez & Antti E. K. Ojala & Ashley Abrook & Emilia Kosonen & Paul Lincoln & Valentin Portmann & Didier Swingedouw, 2025. "Consistent response of European summers to the latitudinal temperature gradient over the Holocene," Nature Communications, Nature, vol. 16(1), pages 1-9, December.
  • Handle: RePEc:nat:natcom:v:16:y:2025:i:1:d:10.1038_s41467-025-65804-x
    DOI: 10.1038/s41467-025-65804-x
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    References listed on IDEAS

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    1. Russell Blackport & James A. Screen, 2020. "Weakened evidence for mid-latitude impacts of Arctic warming," Nature Climate Change, Nature, vol. 10(12), pages 1065-1066, December.
    2. Efi Rousi & Kai Kornhuber & Goratz Beobide-Arsuaga & Fei Luo & Dim Coumou, 2022. "Accelerated western European heatwave trends linked to more-persistent double jets over Eurasia," Nature Communications, Nature, vol. 13(1), pages 1-11, December.
    3. Peter Pfleiderer & Carl-Friedrich Schleussner & Kai Kornhuber & Dim Coumou, 2019. "Summer weather becomes more persistent in a 2 °C world," Nature Climate Change, Nature, vol. 9(9), pages 666-671, September.
    4. Qiuhong Tang & Xuejun Zhang & Jennifer A. Francis, 2014. "Extreme summer weather in northern mid-latitudes linked to a vanishing cryosphere," Nature Climate Change, Nature, vol. 4(1), pages 45-50, January.
    5. Christophe Cassou & Julien Cattiaux, 2016. "Disruption of the European climate seasonal clock in a warming world," Nature Climate Change, Nature, vol. 6(6), pages 589-594, June.
    6. Jake F. Weltzin & Julio L. Betancourt & Benjamin I. Cook & Theresa M. Crimmins & Carolyn A. F. Enquist & Michael D. Gerst & John E. Gross & Geoffrey M. Henebry & Rebecca A. Hufft & Melissa A. Kenney &, 2020. "Seasonality of biological and physical systems as indicators of climatic variation and change," Climatic Change, Springer, vol. 163(4), pages 1755-1771, December.
    7. Yajie Dong & Naiqin Wu & Fengjiang Li & Dan Zhang & Yueting Zhang & Caiming Shen & Houyuan Lu, 2022. "The Holocene temperature conundrum answered by mollusk records from East Asia," Nature Communications, Nature, vol. 13(1), pages 1-9, December.
    8. Francois Lapointe & Ambarish V. Karmalkar & Raymond S. Bradley & Michael J. Retelle & Feng Wang, 2024. "Climate extremes in Svalbard over the last two millennia are linked to atmospheric blocking," Nature Communications, Nature, vol. 15(1), pages 1-10, December.
    9. Buwen Dong & Rowan T. Sutton & Len Shaffrey & Ben Harvey, 2022. "Recent decadal weakening of the summer Eurasian westerly jet attributable to anthropogenic aerosol emissions," Nature Communications, Nature, vol. 13(1), pages 1-10, December.
    10. Dim Coumou & Stefan Rahmstorf, 2012. "A decade of weather extremes," Nature Climate Change, Nature, vol. 2(7), pages 491-496, July.
    11. S. E. Perkins-Kirkpatrick & S. C. Lewis, 2020. "Increasing trends in regional heatwaves," Nature Communications, Nature, vol. 11(1), pages 1-8, December.
    12. Cody C. Routson & Nicholas P. McKay & Darrell S. Kaufman & Michael P. Erb & Hugues Goosse & Bryan N. Shuman & Jessica R. Rodysill & Toby Ault, 2019. "Mid-latitude net precipitation decreased with Arctic warming during the Holocene," Nature, Nature, vol. 568(7750), pages 83-87, April.
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