Carbon isotope discrimination during photosynthesis and dark respiration in intact leaves of Nicotiana sylvestris: comparisons between wild type and mitochondrial mutant plants

Citation
M. Duranceau et al., Carbon isotope discrimination during photosynthesis and dark respiration in intact leaves of Nicotiana sylvestris: comparisons between wild type and mitochondrial mutant plants, AUST J PLAN, 28(1), 2001, pp. 65-71
Citations number
22
Categorie Soggetti
Plant Sciences","Animal & Plant Sciences
Journal title
AUSTRALIAN JOURNAL OF PLANT PHYSIOLOGY
ISSN journal
03107841 → ACNP
Volume
28
Issue
1
Year of publication
2001
Pages
65 - 71
Database
ISI
SICI code
0310-7841(2001)28:1<65:CIDDPA>2.0.ZU;2-9
Abstract
Leaf gas-exchange, carbon isotope discrimination (Delta) during photosynthe sis, carbon isotope composition (delta C-13) of leaf dry matter, leaf carbo hydrates and delta C-13 of dark respiratory CO2 were measured both in wild type (WT) and in a respiratory mutant of Nicotiana sylvestris Spegazz. plan ts. The mutation caused a dysfunction of complex I of the respiratory chain which has been described in detail by Gutierres et al. 1997, PNAS, 94, 343 6. The aim of this work was to verify if this mutation has an influence on carbon isotope discrimination during photosynthesis and dark respiration. A nother objective was to study the possible effect of respiratory fractionat ion on the isotopic composition of dry matter and on the discrimination mea sured on-line, in comparison with the expected Delta based on the model dev eloped by Farquhar et al. 1982, AJPP, 9, 121. On-line Delta measured on lea ves during photosynthesis was lower in the mutants (16.5 parts per thousand +/- 0.9) than in the WT (20.1 parts per thousand +/- 0.6), mainly due to l ower conductance to CO2 diffusion (both across stomatal pores and in the ga seous and liquid phases across the mesophyll) in the mutants. No statistica lly significant difference in the fractionation during dark respiration was observed between WT and mutant plants. However, respiratory CO2 was enrich ed in delta C-13 compared to sucrose and glucose by about 2-3 and 2.5-4 par ts per thousand, respectively. The enrichment in C-13 (about 2 parts per th ousand) observed in leaf metabolites and leaf organic matter in the mutants compared to the WT can be explained by differences in Delta during photosy nthesis. However, the fractionation in the whole-leaf organic matter of bot h WT and mutant plants was higher (more depleted in C-13) than expected bas ed on the values obtained with on-line measurements during photosynthesis. The observed discrimination during dark respiration, releasing C-13-enriche d CO2, may partly explain the higher fractionation in the remaining leaf or ganic matter compared to the overall discrimination during photosynthesis, as measured on-line.