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Relationship of leaf oxygen and carbon isotopic composition with transpiration efficiency in the C4 grasses Setaria viridis and Setaria italica.


ABSTRACT: Leaf carbon and oxygen isotope ratios can potentially provide a time-integrated proxy for stomatal conductance (gs) and transpiration rate (E), and can be used to estimate transpiration efficiency (TE). In this study, we found significant relationships of bulk leaf carbon isotopic signature (?13CBL) and bulk leaf oxygen enrichment above source water (?18OBL) with gas exchange and TE in the model C4 grasses Setaria viridis and S. italica. Leaf ?13C had strong relationships with E, gs, water use, biomass, and TE. Additionally, the consistent difference in ?13CBL between well-watered and water-limited plants suggests that ?13CBL is effective in separating C4 plants with different availability of water. Alternatively, the use of ?18OBL as a proxy for E and TE in S. viridis and S. italica was problematic. First, the oxygen isotopic composition of source water, used to calculate leaf water enrichment (?18OLW), was variable with time and differed across water treatments. Second, water limitations changed leaf size and masked the relationship of ?18OLW and ?18OBL with E. Therefore, the data collected here suggest that ?13CBL but not ?18OBL may be an effective proxy for TE in C4 grasses.

SUBMITTER: Ellsworth PZ 

PROVIDER: S-EPMC5853516 | biostudies-literature | 2017 Jun

REPOSITORIES: biostudies-literature

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Relationship of leaf oxygen and carbon isotopic composition with transpiration efficiency in the C4 grasses Setaria viridis and Setaria italica.

Ellsworth Patrick Z PZ   Ellsworth Patrícia V PV   Cousins Asaph B AB  

Journal of experimental botany 20170601 13


Leaf carbon and oxygen isotope ratios can potentially provide a time-integrated proxy for stomatal conductance (gs) and transpiration rate (E), and can be used to estimate transpiration efficiency (TE). In this study, we found significant relationships of bulk leaf carbon isotopic signature (δ13CBL) and bulk leaf oxygen enrichment above source water (Δ18OBL) with gas exchange and TE in the model C4 grasses Setaria viridis and S. italica. Leaf δ13C had strong relationships with E, gs, water use,  ...[more]

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