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1.
Plant Physiol ; 168(1): 156-63, 2015 May.
Article in English | MEDLINE | ID: mdl-25755253

ABSTRACT

A major contributor to the global carbon cycle is plant respiration. Elevated atmospheric CO2 concentrations may either accelerate or decelerate plant respiration for reasons that have been uncertain. We recently established that elevated CO2 during the daytime decreases plant mitochondrial respiration in the light and protein concentration because CO2 slows the daytime conversion of nitrate (NO3 (-)) into protein. This derives in part from the inhibitory effect of CO2 on photorespiration and the dependence of shoot NO3 (-) assimilation on photorespiration. Elevated CO2 also inhibits the translocation of nitrite into the chloroplast, a response that influences shoot NO3 (-) assimilation during both day and night. Here, we exposed Arabidopsis (Arabidopsis thaliana) and wheat (Triticum aestivum) plants to daytime or nighttime elevated CO2 and supplied them with NO3 (-) or ammonium as a sole nitrogen (N) source. Six independent measures (plant biomass, shoot NO3 (-), shoot organic N, (15)N isotope fractionation, (15)NO3 (-) assimilation, and the ratio of shoot CO2 evolution to O2 consumption) indicated that elevated CO2 at night slowed NO3 (-) assimilation and thus decreased dark respiration in the plants reliant on NO3 (-). These results provide a straightforward explanation for the diverse responses of plants to elevated CO2 at night and suggest that soil N source will have an increasing influence on the capacity of plants to mitigate human greenhouse gas emissions.


Subject(s)
Arabidopsis/physiology , Carbon Dioxide/pharmacology , Darkness , Nitrogen/pharmacology , Triticum/physiology , Ammonium Compounds/pharmacology , Analysis of Variance , Arabidopsis/drug effects , Biomass , Cell Respiration/drug effects , Glucose/analysis , Nitrates/pharmacology , Nitrogen Isotopes , Starch/analysis , Sucrose/analysis , Triticum/drug effects
2.
Am J Bot ; 100(10): 1991-9, 2013 Oct.
Article in English | MEDLINE | ID: mdl-24070859

ABSTRACT

PREMISE OF THE STUDY: Cultivated tomato, Solanum lycopersicum, suffers chilling induced wilting because water movement through its roots decreases with declining soil temperatures. Certain wild tomato species exhibit resistance to chilling-induced wilting, but the extent of this chilling tolerance in wild tomatoes is not known. • METHODS: We measured shoot wilting during root chilling in wild Solanum accessions from habitats differing in elevation, temperature, and precipitation. We also measured shoot wilting during root chilling in introgression lines (ILs) with chromosome 9 segments collinear to the shoot turgor maintenance QTL stm9 region from chilling-tolerant S. habrochaites, chilling and drought-tolerant S. lycopersicoides, or drought-tolerant S. pennellii. • KEY RESULTS: Wild tomato species, which experience chilling temperatures (<10°C) in their native habitat, maintain shoot turgor under root chilling. Among accessions of S. lycopersicum var. cerasiforme, a typically chilling sensitive species, shoot turgor maintenance during root chilling was correlated with the precipitation of the native habitat. By contrast, S. pennellii, a species that is typically drought adapted, did not maintain turgor under root chilling. Grafted plants with roots containing S. habrochaites and S. lycopersicoides introgressions improved shoot turgor maintenance under root chilling. • CONCLUSIONS: Resistance to chilling-induced water stress is an important adaptation to chilling temperatures in wild tomatoes. There is some overlap in adaptation to drought and chilling stress in some tomato species. Root-based resistance to chilling-induced water stress in wild tomatoes may involve orthologous gene(s).


Subject(s)
Cold Temperature , Dehydration , Ecosystem , Plant Shoots/physiology , Solanum lycopersicum/physiology , Altitude , Chromosomes, Plant/genetics , Ecotype , Genotype , Inbreeding , Solanum lycopersicum/genetics , Solanum lycopersicum/growth & development , Plant Roots/physiology , Species Specificity
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