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Drought stress provokes the down‐regulation of methionine and ethylene biosynthesis pathways in Medicago truncatula roots and nodules
Authors:ESTÍBALIZ LARRAINZAR  JOHANNA A. MOLENAAR  STEFANIE WIENKOOP  ERENA GIL‐QUINTANA  BÉNÉDICTE ALIBERT  ANIS M. LIMAMI  CESAR ARRESE‐IGOR  ESTHER M. GONZÁLEZ
Affiliation:1. Dpto. Ciencias del Medio Natural, Universidad Pública de Navarra, , 31006 Pamplona, Spain;2. Laboratory of Plant Physiology, Wageningen University, , Wageningen, 6703 HA The Netherlands;3. Department of Molecular Systems Biology, University of Vienna, , Vienna, 1090 Austria;4. Institut de Recherche en Horticulture et Semences, University of Angers, , Angers, F‐49045 France;5. Institut de Recherche en Horticulture et Semences, INRA, , Beaucouzé, F‐49071 France
Abstract:Symbiotic nitrogen fixation is one of the first physiological processes inhibited in legume plants under water‐deficit conditions. Despite the progress made in the last decades, the molecular mechanisms behind this regulation are not fully understood yet. Recent proteomic work carried out in the model legume Medicago truncatula provided the first indications of a possible involvement of nodule methionine (Met) biosynthesis and related pathways in response to water‐deficit conditions. To better understand this involvement, the drought‐induced changes in expression and content of enzymes involved in the biosynthesis of Met, S‐adenosyl‐L‐methionine (SAM) and ethylene in M. truncatula root and nodules were analyzed using targeted approaches. Nitrogen‐fixing plants were subjected to a progressive water deficit and a subsequent recovery period. Besides the physiological characterization of the plants, the content of total sulphur, sulphate and main S‐containing metabolites was measured. Results presented here show that S availability is not a limiting factor in the drought‐induced decline of nitrogen fixation rates in M. truncatula plants and provide evidences for a down‐regulation of the Met and ethylene biosynthesis pathways in roots and nodules in response to water‐deficit conditions.
Keywords:symbiosis  proteome  sulfur metabolism
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