Concurrent Measurement of O2 Production and Isoprene Emission During Photosynthesis: Pros, Cons and Metabolic Implications of Responses to Light, CO2 and Temperature

Author:

Jardine Kolby Jeremiah1ORCID,Som Suman1,Gallo Luiza Beraldi12,Demus Jilian3,Domingues Tomas Ferreira2ORCID,Wistrom Christina Marie3,Gu Lianhong4ORCID,Tcherkez Guillaume56ORCID,Niinemets Ülo7ORCID

Affiliation:

1. Lawrence Berkeley National Laboratory Climate and Ecosystem Sciences Division Berkeley California USA

2. FFCLRP, Departamento de Biologia, Ribeirão Preto University of São Paulo São Paulo Brazil

3. College of Natural Resources University of California, Berkeley Berkeley California USA

4. Oak Ridge National Laboratory Environmental Sciences Division and Climate Change Science Institute Oak Ridge Tennessee USA

5. Division of Plant Sciences, Research School of Biology Australian National University Canberra Australian Capital Territory Australia

6. Institut de Recherche en Horticulture et Semences, INRAE Université d'Angers Beaucouzé France

7. Chair of Plant Biology and Crop Science Estonian University of Life Sciences Tartu Estonia

Abstract

ABSTRACTTraditional leaf gas exchange experiments have focused on net CO2 exchange (Anet). Here, using California poplar (Populus trichocarpa), we coupled measurements of net oxygen production (NOP), isoprene emissions and δ18O in O2 to traditional CO2/H2O gas exchange with chlorophyll fluorescence, and measured light, CO2 and temperature response curves. This allowed us to obtain a comprehensive picture of the photosynthetic redox budget including electron transport rate (ETR) and estimates of the mean assimilatory quotient (AQ = Anet/NOP). We found that Anet and NOP were linearly correlated across environmental gradients with similar observed AQ values during light (1.25 ± 0.05) and CO2 responses (1.23 ± 0.07). In contrast, AQ was suppressed during leaf temperature responses in the light (0.87 ± 0.28), potentially due to the acceleration of alternative ETR sinks like lipid synthesis. Anet and NOP had an optimum temperature (Topt) of 31°C, while ETR and δ18O in O2 (35°C) and isoprene emissions (39°C) had distinctly higher Topt. The results confirm a tight connection between water oxidation and ETR and support a view of light‐dependent lipid synthesis primarily driven by photosynthetic ATP/NADPH not consumed by the Calvin–Benson cycle, as an important thermotolerance mechanism linked with high rates of (photo)respiration and CO2/O2 recycling.

Publisher

Wiley

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