Revisiting carbon isotope discrimination in C3 plants shows respiration rules when photosynthesis is low (2024)

References

  1. Long, S. P., Farage, P. K. & Garcia, R. L. Measurement of leaf and canopy photosynthetic CO2 exchange in the field. J. Exp. Bot. 47, 1629–1642 (1996).

    CAS Google Scholar

  2. Busch, F. A., Sage, T. L., Cousins, A. B. & Sage, R. F. C3 plants enhance rates of photosynthesis by reassimilating photorespired and respired CO2. Plant Cell Environ. 36, 200–212 (2013).

    CAS PubMed Google Scholar

  3. Gong, X. Y., Tcherkez, G., Wenig, J., Schäufele, R. & Schnyder, H. Determination of leaf respiration in the light: comparison between an isotopic disequilibrium method and the Laisk method. New Phytol. 218, 1371–1382 (2018).

    CAS PubMed Google Scholar

  4. Farquhar, G. D. & Richards, R. A. Isotopic composition of plant carbon correlates with water-use efficiency of wheat genotypes. Funct. Plant Biol. 11, 539–552 (1984).

    CAS Google Scholar

  5. Cerling, T. E. et al. Global vegetation change through the Miocene/Pliocene boundary. Nature 389, 153–158 (1997).

    CAS Google Scholar

  6. Broecker, W. S., Takahashi, T., Simpson, H. J. & Peng, T.-H. Fate of fossil fuel carbon dioxide and the global carbon budget. Science 206, 409–418 (1979).

    CAS PubMed Google Scholar

  7. Yakir, D. & Sternberg, Ld. S. L. The use of stable isotopes to study ecosystem gas exchange. Oecologia 123, 297–311 (2000).

    CAS PubMed Google Scholar

  8. Farquhar, G. D., O’Leary, M. H. & Berry, J. A. On the relationship between carbon isotope discrimination and the intercellular carbon dioxide concentration in leaves. Aust. J. Plant Physiol. 9, 121–137 (1982).

    CAS Google Scholar

  9. Evans, J. R., Sharkey, T. D., Berry, J. A. & Farquhar, G. D. Carbon isotope discrimination measured concurrently with gas-exchange to investigate CO2 diffusion in leaves of higher plants. Aust. J. Plant Physiol. 13, 281–292 (1986).

    CAS Google Scholar

  10. Ubierna, N. et al. Critical review: incorporating the arrangement of mitochondria and chloroplasts into models of photosynthesis and carbon isotope discrimination. Photosynth. Res. 141, 5–31 (2019).

    CAS PubMed Google Scholar

  11. Tcherkez, G. et al. On the 13C/12C isotopic signal of day and night respiration at the mesocosm level. Plant Cell Environ. 33, 900–913 (2010).

    CAS PubMed Google Scholar

  12. Cernusak, L. A., Marshall, J. D., Comstock, J. P. & Balster, N. J. Carbon isotope discrimination in photosynthetic bark. Oecologia 128, 24–35 (2001).

    PubMed Google Scholar

  13. Gu, L. & Sun, Y. Artefactual responses of mesophyll conductance to CO2 and irradiance estimated with the variable J and online isotope discrimination methods. Plant Cell Environ. 37, 1231–1249 (2014).

    CAS PubMed Google Scholar

  14. Barbour, M. M., Ryazanova, S. & Tcherkez, G. in Plant Respiration: Metabolic Fluxes and Carbon Balance (eds Tcherkez, G. & Ghashghaie, J.) 143–160 (Springer International Publishing, 2017).

  15. Flexas, J. et al. Rapid variations of mesophyll conductance in response to changes in CO2 concentration around leaves. Plant Cell Environ. 30, 1284–1298 (2007).

    CAS PubMed Google Scholar

  16. Vrábl, D., Vašková, M., Hronková, M., Flexas, J. & Šantrůček, J. Mesophyll conductance to CO2 transport estimated by two independent methods: effect of variable CO2 concentration and abscisic acid. J. Exp. Bot. 60, 2315–2323 (2009).

    PubMed Google Scholar

  17. Hassiotou, F., Ludwig, M., Renton, M., Veneklaas, E. J. & Evans, J. R. Influence of leaf dry mass per area, CO2, and irradiance on mesophyll conductance in sclerophylls. J. Exp. Bot. 60, 2303–2314 (2009).

    CAS PubMed Google Scholar

  18. Farquhar, G. D., von Caemmerer, S. & Berry, J. A. A biochemical model of photosynthetic CO2 assimilation in leaves of C3 species. Planta 149, 78–90 (1980).

    CAS PubMed Google Scholar

  19. Warren, C. Estimating the internal conductance to CO2 movement. Funct. Plant Biol. 33, 431–442 (2006).

    CAS Google Scholar

  20. Harley, P. C., Loreto, F., Dimarco, G. & Sharkey, T. D. Theoretical considerations when estimating the mesophyll conductance to CO2 flux by analysis of the response of photosynthesis to CO2. Plant Physiol. 98, 1429–1436 (1992).

    CAS PubMed PubMed Central Google Scholar

  21. Di Marco, G., Manes, F., Tricoli, D. & Vitale, E. Fluorescence parameters measured concurrently with net photosynthesis to investigate chloroplastic CO2 concentration in leaves of Quercus ilex L. J. Plant Physiol. 136, 538–543 (1990).

    Google Scholar

  22. van der Putten, P. E. L., Yin, X. & Struik, P. C. Calibration matters: on the procedure of using the chlorophyll fluorescence method to estimate mesophyll conductance. J. Plant Physiol. 220, 167–172 (2018).

    PubMed Google Scholar

  23. Farquhar, G. D. & Cernusak, L. A. Ternary effects on the gas exchange of isotopologues of carbon dioxide. Plant Cell Environ. 35, 1221–1231 (2012).

    CAS PubMed Google Scholar

  24. McNevin, D. B. et al. Differences in carbon isotope discrimination of three variants of D-ribulose-1,5-bisphosphate carboxylase/oxygenase reflect differences in their catalytic mechanisms. J. Biol. Chem. 282, 36068–36076 (2007).

    CAS PubMed Google Scholar

  25. Roeske, C. & O’Leary, M. H. Carbon isotope effects on enzyme-catalyzed carboxylation of ribulose bisphosphate. Biochemistry 23, 6275–6284 (1984).

    CAS Google Scholar

  26. Guy, R. D., Fogel, M. L. & Berry, J. A. Photosynthetic fractionation of the stable isotopes of oxygen and carbon. Plant Physiol. 101, 37–47 (1993).

    CAS PubMed PubMed Central Google Scholar

  27. Evans, J. R. & von Caemmerer, S. Temperature response of carbon isotope discrimination and mesophyll conductance in tobacco. Plant Cell Environ. 36, 745–756 (2013).

    CAS PubMed Google Scholar

  28. Gillon, J. S. & Yakir, D. Internal conductance to CO2 diffusion and C18OO discrimination in C3 leaves. Plant Physiol. 123, 201–214 (2000).

    CAS PubMed PubMed Central Google Scholar

  29. Igamberdiev, A. U. et al. Photorespiration contributes to stomatal regulation and carbon isotope fractionation: a study with barley, potato and Arabidopsis plants deficient in glycine decarboxylase. Photosynth. Res. 81, 139–152 (2004).

    CAS Google Scholar

  30. Lanigan, G. J., Betson, N., Griffiths, H. & Seibt, U. Carbon isotope fractionation during photorespiration and carboxylation in Senecio. Plant Physiol. 148, 2013–2020 (2008).

    CAS PubMed PubMed Central Google Scholar

  31. Rooney, M. A. Short-term Carbon Isotopic Fractionation in Plants (Univ. of Wisconsin-Madison, 1988).

  32. Ubierna, N., Holloway-Phillips, M.-M. & Farquhar, G. D. in Photosynthesis: Methods and Protocols (Ed. Covshoff, D.) 155–196 (Springer, 2018).

  33. Bathellier, C., Badeck, F.-W. & Ghashghaie, J. in Plant Respiration: Metabolic Fluxes and Carbon Balance (eds Tcherkez, G. & Ghashghaie, J.) 43–68 (Springer International Publishing, 2017).

  34. Ubierna, N. & Farquhar, G. D. Advances in measurements and models of photosynthetic carbon isotope discrimination in C3 plants. Plant Cell Environ. 37, 1494–1498 (2014).

    CAS PubMed Google Scholar

  35. O’Leary, M. H. Carbon isotope fractionation in plants. Phytochemistry 20, 553–567 (1981).

    Google Scholar

  36. Tcherkez, G., Farquhar, G., Badeck, F. & Ghashghaie, J. Theoretical considerations about carbon isotope distribution in glucose of C3 plants. Funct. Plant Biol. 31, 857–877 (2004).

    CAS Google Scholar

  37. Tcherkez, G., Mahé, A. & Hodges, M. 12C/13C fractionations in plant primary metabolism. Trends Plant Sci. 16, 499–506 (2011).

    CAS PubMed Google Scholar

  38. von Caemmerer, S. & Farquhar, G. D. Some relationships between the biochemistry of photosynthesis and the gas exchange of leaves. Planta 153, 376–387 (1981).

    Google Scholar

  39. Tholen, D., Ethier, G., Genty, B., Pepin, S. & Zhu, X.-G. Variable mesophyll conductance revisited: theoretical background and experimental implications. Plant Cell Environ. 35, 2087–2103 (2012).

    CAS PubMed Google Scholar

  40. Yin, X. & Struik, P. C. Simple generalisation of a mesophyll resistance model for various intracellular arrangements of chloroplasts and mitochondria in C3 leaves. Photosynth. Res. 132, 211–220 (2017).

    CAS PubMed PubMed Central Google Scholar

  41. Tholen, D., Éthier, G. & Genty, B. Mesophyll conductance with a twist. Plant Cell Environ. 37, 2456–2458 (2014).

    CAS PubMed Google Scholar

  42. Tcherkez, G. et al. Leaf day respiration: low CO2 flux but high significance for metabolism and carbon balance. New Phytol. 216, 986–1001 (2017).

    CAS PubMed Google Scholar

  43. Tcherkez, G. et al. Short-term effects of CO2 and O2 on citrate metabolism in illuminated leaves. Plant Cell Environ. 35, 2208–2220 (2012).

    CAS PubMed Google Scholar

  44. Tcherkez, G., Mauve, C., Lamothe, M., Le Bras, C. & Grapin, A. The 13C/12C isotopic signal of day‐respired CO2 in variegated leaves of Pelargonium × hortorum. Plant Cell Environ. 34, 270–283 (2011).

    CAS PubMed Google Scholar

  45. Schnyder, H., Schäufele, R., Lötscher, M. & Gebbing, T. Disentangling CO2 fluxes: direct measurements of mesocosm-scale natural abundance 13CO2/12CO2 gas exchange, 13C discrimination, and labelling of CO2 exchange flux components in controlled environments. Plant Cell Environ. 26, 1863–1874 (2003).

    CAS Google Scholar

  46. Wingate, L., Seibt, U., Moncrieff, J. B., Jarvis, P. G. & Lloyd, J. Variations in 13C discrimination during CO2 exchange by Picea sitchensis branches in the field. Plant Cell Environ. 30, 600–616 (2007).

    CAS PubMed Google Scholar

  47. Gauthier, P. P. G. et al. In folio isotopic tracing demonstrates that nitrogen assimilation into glutamate is mostly independent from current CO2 assimilation in illuminated leaves of Brassica napus. New Phytol. 185, 988–999 (2010).

    CAS PubMed Google Scholar

  48. Tazoe, Y., von Caemmerer, S., Badger, M. R. & Evans, J. R. Light and CO2 do not affect the mesophyll conductance to CO2 diffusion in wheat leaves. J. Exp. Bot. 60, 2291–2301 (2009).

    CAS PubMed Google Scholar

  49. Ellsworth, P. V., Ellsworth, P. Z., Koteyeva, N. K. & Cousins, A. B. Cell wall properties in Oryza sativa influence mesophyll CO2 conductance. New Phytol. 219, 66–76 (2018).

    CAS PubMed Google Scholar

  50. Jahan, E., Amthor, J. S., Farquhar, G. D., Trethowan, R. & Barbour, M. M. Variation in mesophyll conductance among Australian wheat genotypes. Funct. Plant Biol. 41, 568–580 (2014).

    Google Scholar

  51. Ubierna, N., Sun, W., Kramer, D. M. & Cousins, A. B. The efficiency of C4 photosynthesis under low light conditions in Zea mays, Miscanthus x giganteus and Flaveria bidentis. Plant Cell Environ. 36, 365–381 (2013).

    CAS PubMed Google Scholar

  52. Douthe, C., Dreyer, E., Epron, D. & Warren, C. R. Mesophyll conductance to CO2, assessed from online TDL-AS records of 13CO2 discrimination, displays small but significant short-term responses to CO2 and irradiance in Eucalyptus seedlings. J. Exp. Bot. 62, 5335–5346 (2011).

    CAS PubMed PubMed Central Google Scholar

  53. Tcherkez, G. How large is the carbon isotope fractionation of the photorespiratory enzyme glycine decarboxylase? Funct. Plant Biol. 33, 911–920 (2006).

    CAS Google Scholar

  54. Igamberdiev, A. U. et al. Decarboxylation of glycine contributes to carbon isotope fractionation in photosynthetic organisms. Photosynth. Res. 67, 177–184 (2001).

    CAS PubMed Google Scholar

  55. Ivlev, A. A., Bykova, N. V. & Igamberdiev, A. U. Fractionation of carbon (13C/12C) isotopes in glycine decarboxylase reaction. FEBS Lett. 386, 174–176 (1996).

    CAS PubMed Google Scholar

  56. Holloway-Phillips, M., Cernusak, L. A., Stuart-Williams, H., Ubierna, N. & Farquhar, G. D. Two-source δ18O method to validate the CO18O-photosynthetic discrimination model: implications for mesophyll conductance. Plant Physiol. 181, 1175–1190 (2019).

    CAS PubMed PubMed Central Google Scholar

  57. Farquhar, G. D. & Busch, F. A. Changes in the chloroplastic CO2 concentration explain much of the observed Kok effect: a model. New Phytol. 214, 570–584 (2017).

    CAS PubMed Google Scholar

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Revisiting carbon isotope discrimination in C3 plants shows respiration rules when photosynthesis is low (2024)
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