4.6 Article

Heatwave breaks down the linearity between sun-induced fluorescence and gross primary production

期刊

NEW PHYTOLOGIST
卷 233, 期 6, 页码 2415-2428

出版社

WILEY
DOI: 10.1111/nph.17920

关键词

extreme events; gross primary production (GPP); heatwave; nonphotochemical quenching; photosynthesis; sun-induced fluorescence

资金

  1. European Union [721995, 749323]
  2. Alexander von Humboldt Foundation
  3. European Space Agency (ESA) [4000125402/18/NL/NA]
  4. Photoproxy campaign (ESA) [4000125731/19/NL/LF]
  5. joint FWF-DFG DACH project 'Constraining terrestrial gross primary productivity by joint measurements of the carbonyl sulfide exchange and sun-induced fluorescence'
  6. AustroSIF project - FFG
  7. BMK within the Austrian Space Applications Programme
  8. Marie Curie Actions (MSCA) [749323] Funding Source: Marie Curie Actions (MSCA)

向作者/读者索取更多资源

The study investigated the impact of the 2018 European heatwave on the GPP-SIF relationship in evergreen broadleaved trees, revealing an inversion of the photosynthesis-fluorescence relationship due to extreme heat stress and changes in energy dissipation pathways.
Sun-induced fluorescence in the far-red region (SIF) is increasingly used as a remote and proximal-sensing tool capable of tracking vegetation gross primary production (GPP). However, the use of SIF to probe changes in GPP is challenged during extreme climatic events, such as heatwaves. Here, we examined how the 2018 European heatwave (HW) affected the GPP-SIF relationship in evergreen broadleaved trees with a relatively invariant canopy structure. To do so, we combined canopy-scale SIF measurements, GPP estimated from an eddy covariance tower, and active pulse amplitude modulation fluorescence. The HW caused an inversion of the photosynthesis-fluorescence relationship at both the canopy and leaf scales. The highly nonlinear relationship was strongly shaped by nonphotochemical quenching (NPQ), that is, a dissipation mechanism to protect from the adverse effects of high light intensity. During the extreme heat stress, plants experienced a saturation of NPQ, causing a change in the allocation of energy dissipation pathways towards SIF. Our results show the complex modulation of the NPQ-SIF-GPP relationship at an extreme level of heat stress, which is not completely represented in state-of-the-art coupled radiative transfer and photosynthesis models.

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