Elevated CO <sub>2</sub> alters relative belowground carbon investment for nutrient acquisition in a mature temperate forest

M Michaela K. Reay (School of Geography, Earth and Environmental Science, University of Birmingham) E Emma J. Sayer (Lancaster Environment Centre, Lancaster University) A Andrew Smith V Victoria Pastor A Angeliki Kourmouli (Birmingham Institute of Forest Research, University of Birmingham) M Miles Marshall (School of Environmental and Natural Sciences, Bangor University) R Robert T. Grzesik (School of Geography, Earth and Environmental Science, University of Birmingham) I Iwan Evans (School of Geography, Earth and Environmental Science, University of Birmingham) M Manon Rumeau (School of Geography, Earth and Environmental Science, University of Birmingham) K Kris Hart (Birmingham Institute of Forest Research, University of Birmingham) J Jiaojiao Ma (School of Geography, Earth and Environmental Science, University of Birmingham) R Richard J. Norby (School of Geography, Earth and Environmental Science, University of Birmingham) A A. Robert MacKenzie (School of Geography, Earth and Environmental Science, University of Birmingham) R R. Liz Hamilton (School of Geography, Earth and Environmental Science, University of Birmingham) I Iain P. Hartley (Geography, Faculty of Science, Environment and Economy, University of Exeter) S Sami Ullah (School of Geography, Earth and Environmental Science, University of Birmingham)

Abstract

Forests are potential carbon (C) sinks that partially offset anthropogenic carbon dioxide (CO 2 ) emissions via enhanced C assimilation and productivity. However, the question remains whether mature trees will express sufficient plasticity in nutrient acquisition strategies to support enhanced growth under elevated CO 2 (eCO 2 ). Trees may sustain growth by investing C belowground to enhance nutrient acquisition, e.g., by increasing root absorptive surfaces for greater soil available resource exploration (a “do-it-yourself” strategy) or utilizing C exudation or mycorrhizal associations as priming mechanisms for nutrient acquisition (“outsourcing”). We show that 4 y of eCO 2 (+140 ± 38 ppm; i.e., +35% above ambient) altered the relative belowground C investment strategies of mature oak ( Quercus robur L.) in a 180-y-old temperate forest. Fine-root branching frequency increased 73% under eCO 2 . Specific root C exudation was enhanced under eCO 2 (63%), particularly outside the peak growing season, and the exudate C to nitrogen (N) ratio was increased (28%). Ectomycorrhizal (ECM) biomass production increased during leaf fall (17%) while ECM turnover increased almost fourfold under eCO 2 . The exudate and root metabolome composition were considerably altered during the late growing season under eCO 2 . We find, therefore, that a broad suite of nutrient acquisition strategies are upregulated under eCO 2 , with dynamic shifting between different outsourcing and do-it-yourself elements at different times of the year. These belowground changes support the increase in net primary productivity observed in this forest, with implications for the role of mature temperate forests in the global carbon sink.

Article Details

Volume / Issue Vol. 122, Issue 29
Published July 22, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (16)

M

Michaela K. Reay

School of Geography, Earth and Environmental Science, University of Birmingham

E

Emma J. Sayer

Lancaster Environment Centre, Lancaster University

A

Andrew Smith

V

Victoria Pastor

A

Angeliki Kourmouli

Birmingham Institute of Forest Research, University of Birmingham

M

Miles Marshall

School of Environmental and Natural Sciences, Bangor University

R

Robert T. Grzesik

School of Geography, Earth and Environmental Science, University of Birmingham

I

Iwan Evans

School of Geography, Earth and Environmental Science, University of Birmingham

M

Manon Rumeau

School of Geography, Earth and Environmental Science, University of Birmingham

K

Kris Hart

Birmingham Institute of Forest Research, University of Birmingham

J

Jiaojiao Ma

School of Geography, Earth and Environmental Science, University of Birmingham

R

Richard J. Norby

School of Geography, Earth and Environmental Science, University of Birmingham

A

A. Robert MacKenzie

School of Geography, Earth and Environmental Science, University of Birmingham

R

R. Liz Hamilton

School of Geography, Earth and Environmental Science, University of Birmingham

I

Iain P. Hartley

Geography, Faculty of Science, Environment and Economy, University of Exeter

S

Sami Ullah

School of Geography, Earth and Environmental Science, University of Birmingham