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Warming drives dissolved organic carbon export from pristine alpine soils

Author

Listed:
  • Andrew R. Pearson

    (University of Waikato, Kirikiriroa Hamilton
    Institute of Environmental Science and Research (ESR))

  • Bethany R. S. Fox

    (University of Huddersfield)

  • John C. Hellstrom

    (University of Melbourne)

  • Marcus J. Vandergoes

    (GNS Science)

  • Sebastian F. M. Breitenbach

    (Northumbria University)

  • Russell N Drysdale

    (University of Melbourne)

  • Sebastian N. Höpker

    (University of Waikato, Kirikiriroa Hamilton)

  • Christopher T. Wood

    (University of Waikato, Kirikiriroa Hamilton
    GNS Science)

  • Martin Schiller

    (University of Copenhagen)

  • Adam Hartland

    (University of Waikato, Kirikiriroa Hamilton
    Lincoln Agritech Ltd, Ruakura, Kirikiriroa Hamilton)

Abstract

Despite decades of research, the influence of climate on the export of dissolved organic carbon (DOC) from soil remains poorly constrained, adding uncertainty to global carbon models. The limited temporal range of contemporary monitoring data, ongoing climate reorganisation and confounding anthropogenic activities muddy the waters further. Here, we reconstruct DOC leaching over the last ~14,000 years using alpine environmental archives (two speleothems and one lake sediment core) across 4° of latitude from Te Waipounamu/South Island of Aotearoa New Zealand. We selected broadly comparable palaeoenvironmental archives in mountainous catchments, free of anthropogenically-induced landscape changes prior to ~1200 C.E. We show that warmer temperatures resulted in increased allochthonous DOC export through the Holocene, most notably during the Holocene Climatic Optimum (HCO), which was some 1.5–2.5 °C warmer than the late pre-industrial period—then decreased during the cooler mid-Holocene. We propose that temperature exerted the key control on the observed doubling to tripling of soil DOC export during the HCO, presumably via temperature-mediated changes in vegetative soil C inputs and microbial degradation rates. Future warming may accelerate DOC export from mountainous catchments, with implications for the global carbon cycle and water quality.

Suggested Citation

  • Andrew R. Pearson & Bethany R. S. Fox & John C. Hellstrom & Marcus J. Vandergoes & Sebastian F. M. Breitenbach & Russell N Drysdale & Sebastian N. Höpker & Christopher T. Wood & Martin Schiller & Adam, 2024. "Warming drives dissolved organic carbon export from pristine alpine soils," Nature Communications, Nature, vol. 15(1), pages 1-15, December.
  • Handle: RePEc:nat:natcom:v:15:y:2024:i:1:d:10.1038_s41467-024-47706-6
    DOI: 10.1038/s41467-024-47706-6
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    References listed on IDEAS

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    1. Johannes Lehmann & Markus Kleber, 2015. "The contentious nature of soil organic matter," Nature, Nature, vol. 528(7580), pages 60-68, December.
    2. Ang Hu & Mira Choi & Andrew J. Tanentzap & Jinfu Liu & Kyoung-Soon Jang & Jay T. Lennon & Yongqin Liu & Janne Soininen & Xiancai Lu & Yunlin Zhang & Ji Shen & Jianjun Wang, 2022. "Ecological networks of dissolved organic matter and microorganisms under global change," Nature Communications, Nature, vol. 13(1), pages 1-15, December.
    3. Joel Podgorski & Ruohan Wu & Biswajit Chakravorty & David A. Polya, 2020. "Groundwater Arsenic Distribution in India by Machine Learning Geospatial Modeling," IJERPH, MDPI, vol. 17(19), pages 1-17, September.
    4. Mingming Wang & Xiaowei Guo & Shuai Zhang & Liujun Xiao & Umakant Mishra & Yuanhe Yang & Biao Zhu & Guocheng Wang & Xiali Mao & Tian Qian & Tong Jiang & Zhou Shi & Zhongkui Luo, 2022. "Global soil profiles indicate depth-dependent soil carbon losses under a warmer climate," Nature Communications, Nature, vol. 13(1), pages 1-11, December.
    5. C. Freeman & C. D. Evans & D. T. Monteith & B. Reynolds & N. Fenner, 2001. "Export of organic carbon from peat soils," Nature, Nature, vol. 412(6849), pages 785-785, August.
    6. Liza K. McDonough & Isaac R. Santos & Martin S. Andersen & Denis M. O’Carroll & Helen Rutlidge & Karina Meredith & Phetdala Oudone & John Bridgeman & Daren C. Gooddy & James P. R. Sorensen & Dan J. La, 2020. "Changes in global groundwater organic carbon driven by climate change and urbanization," Nature Communications, Nature, vol. 11(1), pages 1-10, December.
    7. Eric A. Davidson & Ivan A. Janssens, 2006. "Temperature sensitivity of soil carbon decomposition and feedbacks to climate change," Nature, Nature, vol. 440(7081), pages 165-173, March.
    8. Charles D. Koven & Gustaf Hugelius & David M. Lawrence & William R. Wieder, 2017. "Higher climatological temperature sensitivity of soil carbon in cold than warm climates," Nature Climate Change, Nature, vol. 7(11), pages 817-822, November.
    9. T. W. Crowther & K. E. O. Todd-Brown & C. W. Rowe & W. R. Wieder & J. C. Carey & M. B. Machmuller & B. L. Snoek & S. Fang & G. Zhou & S. D. Allison & J. M. Blair & S. D. Bridgham & A. J. Burton & Y. C, 2016. "Quantifying global soil carbon losses in response to warming," Nature, Nature, vol. 540(7631), pages 104-108, December.
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