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Molecular changes in Pisum sativum L. roots during arbuscular mycorrhiza buffering of cadmium stress.
Rivera-Becerril, Facundo; van Tuinen, Diederik; Martin-Laurent, Fabrice; Metwally, Ashraf; Dietz, Karl-Josef; Gianinazzi, Silvio; Gianinazzi-Pearson, Vivienne.
Affiliation
  • Rivera-Becerril F; UMR 1088 INRA/5184 CNRS/U., Bourgogne Plante-Microbe-Environnement, INRA-CMSE, BP 86510, 21065, Dijon Cédex, France.
  • van Tuinen D; Depto. El Hombre y su Ambiente, CBS, Universidad Autónoma Metropolitana-Xochimilco, Calz. del Hueso 1100, Col. Villa Quietud, 04960, México DF, Mexico.
  • Martin-Laurent F; UMR 1088 INRA/5184 CNRS/U., Bourgogne Plante-Microbe-Environnement, INRA-CMSE, BP 86510, 21065, Dijon Cédex, France.
  • Metwally A; Microbiologie et Géochimie des Sols, UMR A111 INRA/U. Bourgogne, BP 86510, 21065, Dijon Cédex, France.
  • Dietz KJ; Department of Physiology and Biochemistry of Plants, University of Bielefeld, Universitätstraße 25, 33501, Bielefeld, Germany.
  • Gianinazzi S; Botany Department, Faculty of Science, Assiut University, 71516, Assiut, Egypt.
  • Gianinazzi-Pearson V; Department of Physiology and Biochemistry of Plants, University of Bielefeld, Universitätstraße 25, 33501, Bielefeld, Germany.
Mycorrhiza ; 16(1): 51-60, 2005 Dec.
Article in En | MEDLINE | ID: mdl-16136340
ABSTRACT
Molecular responses to cadmium (Cd) stress were studied in mycorrhizal and non-mycorrhizal Pisum sativum L. cv. Frisson inoculated with Glomus intraradices. Biomass decreases caused by the heavy metal were significantly less in mycorrhizal than in non-mycorrhizal plants. Real-time reverse transcriptase-polymerase chain reaction showed that genes implicated in pathways of Cd detoxification varied in response to mycorrhiza development or Cd application. Expression of a metallothionein-encoding gene increased strongly in roots of Cd-treated non-mycorrhizal plants. Genes encoding gamma-glutamylcysteine synthetase and glutathione (GSH) synthetase, responsible for the synthesis of the phytochelatin (PC) precursor GSH, were activated by Cd in mycorrhizal and non-mycorrhizal plants. Cd stress decreased accumulation of GSH/homoglutathione (hGSH) and increased thiol groups in pea roots, whether mycorrhizal or not, suggesting synthesis of PCs and/or homophytochelatins. An hGSH synthetase gene, involved in hGSH synthesis, did not respond to Cd alone but was activated by mycorrhizal development in the presence of Cd. Transcript levels of a glutathione reductase gene were only increased in non-mycorrhizal roots treated with Cd. Studies of three stress-related genes showed that a heat-shock protein gene was activated in mycorrhizal roots or by Cd and chitinase gene transcripts increased under Cd stress to a greater extent in mycorrhizal roots, whilst a chalcone isomerase gene was only up-regulated by Cd. Results indicate that although heavy metal chelation pathways contribute to Cd stress responses in pea, they may not make a major contribution to Cd tolerance strategies operating in the arbuscular mycorrhizal symbiosis.
Subject(s)

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Cadmium / Plant Roots / Pisum sativum / Mycorrhizae Language: En Journal: Mycorrhiza Journal subject: BIOLOGIA Year: 2005 Type: Article Affiliation country: France

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Cadmium / Plant Roots / Pisum sativum / Mycorrhizae Language: En Journal: Mycorrhiza Journal subject: BIOLOGIA Year: 2005 Type: Article Affiliation country: France