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The impact of soil microorganisms on the global budget of δ18O in atmospheric CO2

  • Lisa Wingate
  • , Jérôme Ogée
  • , Matthias Cuntz
  • , Bernard Genty
  • , Ilja Reiter
  • , Ulli Seibt
  • , Dan Yakir
  • , Kadmiel Maseyk
  • , Elise G. Pendall
  • , Margaret M. Barbouri
  • , Behzad Mortazavi
  • , Regis Burlett
  • , Philippe Peylin
  • , John Miller
  • , Maurizio Mencuccini
  • , Jee H. Shim
  • , John Hunt
  • , John Grace

Research output: Contribution to journalArticlepeer-review

71 Citations (Scopus)

Abstract

Improved global estimates of terrestrial photosynthesis and respiration are critical for predicting the rate of change in atmospheric CO2. The oxygen isotopic composition of atmospheric CO2 can be used to estimate these fluxes because oxygen isotopic exchange between CO2 and water creates distinct isotopic flux signatures. The enzyme carbonic anhydrase (CA) is known to accelerate this exchange in leaves, but the possibility of CA activity in soils is commonly neglected. Here, we report widespread accelerated soil CO2 hydration. Exchange was 10-300 times faster than the uncatalyzed rate, consistent with typical population sizes for CAcontaining soil microorganisms. Including accelerated soil hydration in global model simulations modifies contributions from soil and foliage to the global CO18O budget and eliminates persistent discrepancies existing between model and atmospheric observations. This enhanced soil hydration also increases the differences between the isotopic signatures of photosynthesis and respiration, particularly in the tropics, increasing the precision of CO 2 gross fluxes obtained by using the δ18O of atmospheric CO2 by 50%.
Original languageEnglish
Pages (from-to)22411-22415
Number of pages5
JournalProceedings of the National Academy of Sciences of the United States of America
Volume106
Issue number52
DOIs
Publication statusPublished - 2009

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