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Informing Mature Temperate Forests as Natural Climate Solutions: Changed Fine Root Biomass and Morphology under Elevated CO2

  • Grace Handy
  • , Angeliki Kourmouli
  • , Marie Arnaud
  • , Carolina Mayoral
  • , R.J. Norby
  • , Michaela K Reay
  • , Sami Ullah
  • , Iain Hartley
  • , R. Liz Hamilton
  • , Robert T. Grzesik
  • , Andy Smith
  • , Elena Vanguelova
  • , A. Robert MacKenzie
  • , Adriane Esquivel-Muelbert
  • University of Birmingham
  • University of Exeter
  • University of Cambridge

Research output: Contribution to journalArticlepeer-review

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Abstract

• Nature based solutions to climate change must incorporate mitigation strategies that sustain and enhance forest carbon sequestration, requiring comprehensive accounting of forest carbon budgets, including carbon stored in roots and soils. Forests’ capacity to remain as carbon sinks under elevated CO2 (eCO2) may depend on tree root systems adjusting to overcome nutrient and water limitation. It remains uncertain whether and how root systems can change across depth under eCO2 in mature forests.
• We assessed fine root biomass, morphology, depth distribution and C:N ratio, using 1 m deep soil cores from years five and seven of the Birmingham Institute of Forest Research Free-Air CO2 Enrichment experiment (BIFoR FACE), a mature, deciduous forest subject to eCO2 (+150 µl/L i.e. mid-21st century projected atmospheric CO2 concentration).
• Fine root biomass was ~40% greater under eCO2, concentrated in the top 50 cm and equivalent to ~36% more root carbon standing stock. Contrary to expectations, the distribution of fine root biomass did not shift to greater depths. Changes in morphology were variable but, on average, there was a positive interaction between eCO2 and depth on specific root length. Under eCO2, greater fine root biomass and changes in morphology result in higher fine root surface area, and thereby a greater potential for resource acquisition across the soil profile.
• This mature temperate forest has the potential to adjust its root systems to eCO2. Belowground carbon in models predicting the future terrestrial carbon sink will benefit from the improved characterisation of fine roots under eCO2.
Original languageEnglish
JournalPlants, People, Planet
Early online date29 May 2026
DOIs
Publication statusE-pub ahead of print - 29 May 2026

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 15 - Life on Land
    SDG 15 Life on Land

Keywords

  • cumulative root fracton
  • free air carbon enrichment (FACE)
  • root biomass
  • root composition
  • root morphology
  • root traits
  • Quercus robur

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