Literature DB >> 26719951

A test of the 'one-point method' for estimating maximum carboxylation capacity from field-measured, light-saturated photosynthesis.

Martin G De Kauwe1, Yan-Shih Lin1, Ian J Wright1, Belinda E Medlyn2, Kristine Y Crous2,3, David S Ellsworth2, Vincent Maire4, I Colin Prentice1,5, Owen K Atkin6, Alistair Rogers7, Ülo Niinemets8,9, Shawn P Serbin7, Patrick Meir10,11, Johan Uddling12, Henrique F Togashi1,13, Lasse Tarvainen14, Lasantha K Weerasinghe6,15, Bradley J Evans13,16, F Yoko Ishida17, Tomas F Domingues18.   

Abstract

Simulations of photosynthesis by terrestrial biosphere models typically need a specification of the maximum carboxylation rate (Vcmax ). Estimating this parameter using A-Ci curves (net photosynthesis, A, vs intercellular CO2 concentration, Ci ) is laborious, which limits availability of Vcmax data. However, many multispecies field datasets include net photosynthetic rate at saturating irradiance and at ambient atmospheric CO2 concentration (Asat ) measurements, from which Vcmax can be extracted using a 'one-point method'. We used a global dataset of A-Ci curves (564 species from 46 field sites, covering a range of plant functional types) to test the validity of an alternative approach to estimate Vcmax from Asat via this 'one-point method'. If leaf respiration during the day (Rday ) is known exactly, Vcmax can be estimated with an r(2) value of 0.98 and a root-mean-squared error (RMSE) of 8.19 μmol m(-2) s(-1) . However, Rday typically must be estimated. Estimating Rday as 1.5% of Vcmax, we found that Vcmax could be estimated with an r(2) of 0.95 and an RMSE of 17.1 μmol m(-2) s(-1) . The one-point method provides a robust means to expand current databases of field-measured Vcmax , giving new potential to improve vegetation models and quantify the environmental drivers of Vcmax variation.
© 2015 The Authors. New Phytologist © 2015 New Phytologist Trust.

Entities:  

Keywords:  A-Ci curve; leaf respiration during the day (Rday); maximum carboxylation rate (Vcmax); net photosynthetic rate at saturating irradiance and at ambient atmospheric CO2 concentration (Asat)

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Year:  2015        PMID: 26719951     DOI: 10.1111/nph.13815

Source DB:  PubMed          Journal:  New Phytol        ISSN: 0028-646X            Impact factor:   10.151


  23 in total

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