4.7 Article

Do all chlorophyll fluorescence emission wavelengths capture the spring recovery of photosynthesis in boreal evergreen foliage?

Journal

PLANT CELL AND ENVIRONMENT
Volume 42, Issue 12, Pages 3264-3279

Publisher

WILEY
DOI: 10.1111/pce.13620

Keywords

chlorophyll a fluorescence spectra; evergreen vegetation; F-690; F-740; fluorescence ratio; leaf PAR absorption; Pinus sylvestris; PSI fluorescence; sustained nonphotochemical quenching (NPQ(S))

Categories

Funding

  1. China Scholarship Council
  2. EU LIFE 12 [ENV/FI/000409]
  3. European Cooperation in Science and Technology [ES1309/OPTIMISE]
  4. H2020 European Research Council [SyG-2013-610028]
  5. Helsingin Yliopiston Tiedesaatio [490116]
  6. Catalan Government project [SGR 2014-274]
  7. Spanish Government [CGL2016-79835-P]
  8. European Research Council Synergy [SyG-2013-610028]
  9. COST Action [ES1309]
  10. Academy of Finland [272041, 319211, 293443, 288039]
  11. Academy of Finland (AKA) [293443, 319211, 319211, 293443] Funding Source: Academy of Finland (AKA)

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Chlorophyll a fluorescence (ChlF) is closely related to photosynthesis and can be measured remotely using multiple spectral features as solar-induced fluorescence (SIF). In boreal regions, SIF shows particular promise as an indicator of photosynthesis, in part because of the limited variation of seasonal light absorption in these ecosystems. Seasonal spectral changes in ChlF could yield new information on processes such as sustained nonphotochemical quenching (NPQ(S)) but also disrupt the relationship between SIF and photosynthesis. We followed ChlF and functional and biochemical properties of Pinus sylvestris needles during the photosynthetic spring recovery period to answer the following: (a) How ChlF spectra change over seasonal timescales? (b) How pigments, NPQ(S), and total photosynthetically active radiation (PAR) absorption drive changes of ChlF spectra? (c) Do all ChlF wavelengths track photosynthetic seasonality? We found seasonal ChlF variation in the red and far-red wavelengths, which was strongly correlated with NPQ(S), carotenoid content, and photosynthesis (enhanced in the red), but not with PAR absorption. Furthermore, a rapid decrease in red/far-red ChlF ratio occurred in response to a cold spell, potentially relating to the structural reorganization of the photosystems. We conclude that all current SIF retrieval features can track seasonal photosynthetic dynamics in boreal evergreens, but the full SIF spectra provides additional insight.

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