Both plant and bacterial nitrate reductase contribute to nitric oxide production in Medicago truncatula nitrogen-fixing nodules
2011
Horchani, Faouzi | Prévôt, Marianne | Boscari, Alexandre | Evangelisti, Edouard | Meilhoc, Eliane | Bruand, Claude | Raymond, Philippe | Aschi-Smiti, Samira | Puppo, Alain | Brouquisse, Renaud | Interactions Biotiques et Santé Végétale (IBSV) ; Institut National de la Recherche Agronomique (INRA) | Université of Tunis | Unité mixte de recherche interactions plantes-microorganismes ; Institut National de la Recherche Agronomique (INRA)-Université Toulouse III - Paul Sabatier (UT3) ; Université de Toulouse (UT)-Université de Toulouse (UT)-Centre National de la Recherche Scientifique (CNRS) | Station de physiologie végétale ; Institut National de la Recherche Agronomique (INRA) | Institut National de la Recherche Agronomique; Universite de Nice-Sophia Antipolis; Centre National de la Recherche Scientifique; Agence Nationale pour la Recherche [ANR-07-BLAN-0117-02]; Erasmus Mundus program (IMAGEEN); Conseil Regional de Provence Alpes Cote d'Azur; National Institute for Applied Sciences
International audience
显示更多 [+] 显示较少 [-]英语. Nitric oxide (NO) is a signaling and defense molecule of major importance in living organisms. In the model legume Medicago truncatula, NO production has been detected in the nitrogen fixation zone of the nodule, but the systems responsible for its synthesis are yet unknown and its role in symbiosis is far from being elucidated. In this work, using pharmacological and genetic approaches, we explored the enzymatic source of NO production in M. truncatula-Sinorhizobium meliloti nodules under normoxic and hypoxic conditions. When transferred from normoxia to hypoxia, nodule NO production was rapidly increased, indicating that NO production capacity is present in functioning nodules and may be promptly up-regulated in response to decreased oxygen availability. Contrary to roots and leaves, nodule NO production was stimulated by nitrate and nitrite and inhibited by tungstate, a nitrate reductase inhibitor. Nodules obtained with either plant nitrate reductase RNA interference double knockdown (MtNR1/2) or bacterial nitrate reductase-deficient (napA) and nitrite reductase-deficient (nirK) mutants, or both, exhibited reduced nitrate or nitrite reductase activities and NO production levels. Moreover, NO production in nodules was found to be inhibited by electron transfer chain inhibitors, and nodule energy state (ATP-ADP ratio) was significantly reduced when nodules were incubated in the presence of tungstate. Our data indicate that both plant and bacterial nitrate reductase and electron transfer chains are involved in NO synthesis. We propose the existence of a nitrate-NO respiration process in nodules that could play a role in the maintenance of the energy status required for nitrogen fixation under oxygen-limiting conditions
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