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June 14, 2026Science Advances2 citationsOpen Access

Decoupled carbon assimilation and growth responses to aridity in temperate deciduous oaks

MRMukund Palat RaoAPArturo Pacheco-SolanaRLRong Li

Key Points

  • This research aims to understand how carbon uptake and growth in temperate oaks are affected by aridity and climate variability.
  • Analyzed data from 137 tree ring sites across eight North American oak species.
  • Measured hourly gross primary productivity and growth at four sites over seven years.
  • Examined the relationship between wood formation and climatic variables such as vapor pressure deficit.
  • Annual growth was insensitive to climate variability after midsummer despite significant carbon uptake occurring.
  • Photosynthesis and wood formation were shown to be asynchronous, ceasing earlier than photosynthesis during low humidity and temperature.
  • The study found a strong correlation (r = 0.86, P < 0.05) between decoupling and interannual variability in vapor pressure deficit.

Abstract

The magnitude of the terrestrial carbon sink remains a key uncertainty in future climate projections, in part due to poorly understood links between carbon uptake and its allocation to woody biomass in vegetation. Here, in this study, we show that photosynthesis and aboveground growth occur asynchronously across diel to seasonal scales in eight North American oak species. Across 137 tree ring sites, current-year annual growth was insensitive to climate variability after midsummer despite 26 to 36% of annual gross primary productivity (GPP) occurring during this period. Hourly GPP flux and growth measurements at four sites spanning seven site years further demonstrate that wood formation ceases earlier than photosynthesis and is restricted to periods of low atmospheric aridity and temperature. This photosynthesis-growth decoupling intensifies with interannual variability in vapor pressure deficit ( r = 0.86, P < 0.05), suggesting that by assuming tight coupling between photosynthesis and woody biomass, current earth system models may overestimate long-term carbon sequestration in forests.

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Cite This Study

Rao et al. (2026) studied this question.

synapsesocial.com/papers/6a2e4704b1cc60ccdea8ba17https://doi.org/10.1126/sciadv.ady7139
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