Literature DB >> 21856638

Involvement of nitric oxide and auxin in signal transduction of copper-induced morphological responses in Arabidopsis seedlings.

Andrea Peto1, Nóra Lehotai, Jorge Lozano-Juste, José León, Irma Tari, László Erdei, Zsuzsanna Kolbert.   

Abstract

BACKGROUND AND AIMS: Plants are able to adapt to the environment dynamically through regulation of their growth and development. Excess copper (Cu(2+)), a toxic heavy metal, induces morphological alterations in plant organs; however, the underlying mechanisms are still unclear. With this in mind, the multiple signalling functions of nitric oxide (NO) in plant cells and its possible regulatory role and relationship with auxin were examined during Cu(2+)-induced morphological responses.
METHODS: Endogenous auxin distribution was determined by microscopic observation of X-Gluc-stained DR5::GUS arabidopsis, and the levels of NO, superoxide and peroxynitrite were detected by fluorescence microscopy. As well as wild-type, NO-overproducer (nox1) and -deficient (nia1nia2 and nia1nia2noa1-2) arabidopsis plants were used. KEY
RESULTS: Cu(2+) at a concentration of 50 µm resulted in a large reduction in cotyledon area and hypocotyl and primary root lengths, accompanied by an increase in auxin levels. In cotyledons, a low Cu(2+) concentration promoted NO accumulation, which was arrested by nitric oxide synthase or nitrate reductase inhibitors. The 5-μm Cu(2+)-induced NO synthesis was not detectable in nia1nia2 or nia1nia2noa1-2 plants. In roots, Cu(2+) caused a decrease of the NO level which was not associated with superoxide and peroxynitrite formation. Inhibition of auxin transport resulted in an increase in NO levels, while exogenous application of an NO donor reduced DR5::GUS expression. The elongation processes of nox1 were not sensitive to Cu(2+), but NO-deficient plants showed diverse growth responses.
CONCLUSIONS: In plant organs, Cu(2+) excess results in severe morphological responses during which the endogenous hormonal balance and signal transduction are affected. Auxin and NO negatively regulate each other's level and NO intensifies the metal-induced cotyledon expansion, but mitigates elongation processes under Cu(2+) exposure.

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Year:  2011        PMID: 21856638      PMCID: PMC3158692          DOI: 10.1093/aob/mcr176

Source DB:  PubMed          Journal:  Ann Bot        ISSN: 0305-7364            Impact factor:   4.357


  33 in total

1.  Characterization of a nitric oxide synthase from the plant kingdom: NO generation from the green alga Ostreococcus tauri is light irradiance and growth phase dependent.

Authors:  Noelia Foresi; Natalia Correa-Aragunde; Gustavo Parisi; Gonzalo Caló; Graciela Salerno; Lorenzo Lamattina
Journal:  Plant Cell       Date:  2010-11-30       Impact factor: 11.277

2.  Nitric oxide modulates the expression of cell cycle regulatory genes during lateral root formation in tomato.

Authors:  Natalia Correa-Aragunde; Magdalena Graziano; Christian Chevalier; Lorenzo Lamattina
Journal:  J Exp Bot       Date:  2006-01-12       Impact factor: 6.992

3.  Response to copper excess in Arabidopsis thaliana: Impact on the root system architecture, hormone distribution, lignin accumulation and mineral profile.

Authors:  Hélène Lequeux; Christian Hermans; Stanley Lutts; Nathalie Verbruggen
Journal:  Plant Physiol Biochem       Date:  2010-05-27       Impact factor: 4.270

4.  Selenium-induced up-regulation of the antioxidant defense and methylglyoxal detoxification system reduces salinity-induced damage in rapeseed seedlings.

Authors:  Mirza Hasanuzzaman; Mohammad Anwar Hossain; Masayuki Fujita
Journal:  Biol Trace Elem Res       Date:  2011-01-25       Impact factor: 3.738

5.  Inhibition of nitric oxide synthase (NOS) underlies aluminum-induced inhibition of root elongation in Hibiscus moscheutos.

Authors:  Qiu-Ying Tian; Dong-Hua Sun; Min-Gui Zhao; Wen-Hao Zhang
Journal:  New Phytol       Date:  2007       Impact factor: 10.151

6.  Modulation of copper toxicity-induced oxidative damage by nitric oxide supply in the adventitious roots of Panax ginseng.

Authors:  Rajesh Kumar Tewari; Eun-Joo Hahn; Kee-Yoeup Paek
Journal:  Plant Cell Rep       Date:  2007-09-08       Impact factor: 4.570

7.  Peroxisomes are required for in vivo nitric oxide accumulation in the cytosol following salinity stress of Arabidopsis plants.

Authors:  Francisco J Corpas; Makoto Hayashi; Shoji Mano; Mikio Nishimura; Juan B Barroso
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8.  Cellular response of pea plants to cadmium toxicity: cross talk between reactive oxygen species, nitric oxide, and calcium.

Authors:  María Rodríguez-Serrano; María C Romero-Puertas; Diana M Pazmiño; Pilar S Testillano; María C Risueño; Luis A Del Río; Luisa M Sandalio
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9.  Involvement of nitrate reductase (NR) in osmotic stress-induced NO generation of Arabidopsis thaliana L. roots.

Authors:  Zsuzsanna Kolbert; Leandro Ortega; László Erdei
Journal:  J Plant Physiol       Date:  2009-10-12       Impact factor: 3.549

10.  Identification and characterization of a chlorate-resistant mutant of Arabidopsis thaliana with mutations in both nitrate reductase structural genes NIA1 and NIA2.

Authors:  J Q Wilkinson; N M Crawford
Journal:  Mol Gen Genet       Date:  1993-05
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  25 in total

Review 1.  Auxin and the integration of environmental signals into plant root development.

Authors:  Kemal Kazan
Journal:  Ann Bot       Date:  2013-10-17       Impact factor: 4.357

Review 2.  Nitric oxide signaling and its crosstalk with other plant growth regulators in plant responses to abiotic stress.

Authors:  Mohd Asgher; Tasir S Per; Asim Masood; Mehar Fatma; Luciano Freschi; Francisco J Corpas; Nafees A Khan
Journal:  Environ Sci Pollut Res Int       Date:  2016-11-03       Impact factor: 4.223

Review 3.  Role of ROS and auxin in plant response to metal-mediated stress.

Authors:  Hong-Mei Yuan; Wen-Cheng Liu; Yan Jin; Ying-Tang Lu
Journal:  Plant Signal Behav       Date:  2013-04-19

4.  Nitric oxide contributes to copper tolerance by influencing ROS metabolism in Arabidopsis.

Authors:  Andrea Pető; Nóra Lehotai; Gábor Feigl; Nóra Tugyi; Attila Ördög; Katalin Gémes; Irma Tari; László Erdei; Zsuzsanna Kolbert
Journal:  Plant Cell Rep       Date:  2013-09-07       Impact factor: 4.570

5.  Zinc induces distinct changes in the metabolism of reactive oxygen and nitrogen species (ROS and RNS) in the roots of two Brassica species with different sensitivity to zinc stress.

Authors:  Gábor Feigl; Nóra Lehotai; Árpád Molnár; Attila Ördög; Marta Rodríguez-Ruiz; José M Palma; Francisco J Corpas; László Erdei; Zsuzsanna Kolbert
Journal:  Ann Bot       Date:  2014-12-22       Impact factor: 4.357

6.  Understanding the development of roots exposed to contaminants and the potential of plant-associated bacteria for optimization of growth.

Authors:  Tony Remans; Sofie Thijs; Sascha Truyens; Nele Weyens; Kerim Schellingen; Els Keunen; Heidi Gielen; Ann Cuypers; Jaco Vangronsveld
Journal:  Ann Bot       Date:  2012-05-25       Impact factor: 4.357

Review 7.  Crosstalk and gene expression in microorganisms under metals stress.

Authors:  Pooja Sharma; Ambreen Bano; Ashok Kumar Nadda; Swati Sharma; Sunita Varjani; Surendra Pratap Singh
Journal:  Arch Microbiol       Date:  2022-06-21       Impact factor: 2.552

8.  Nitric oxide-cytokinin interplay influences selenite sensitivity in Arabidopsis.

Authors:  Nóra Lehotai; Gábor Feigl; Ágnes Koós; Árpád Molnár; Attila Ördög; Andrea Pető; László Erdei; Zsuzsanna Kolbert
Journal:  Plant Cell Rep       Date:  2016-07-23       Impact factor: 4.570

9.  The AtCRK5 Protein Kinase Is Required to Maintain the ROS NO Balance Affecting the PIN2-Mediated Root Gravitropic Response in Arabidopsis.

Authors:  Ágnes Cséplő; Laura Zsigmond; Norbert Andrási; Abu Imran Baba; Nitin M Labhane; Andrea Pető; Zsuzsanna Kolbert; Hajnalka E Kovács; Gábor Steinbach; László Szabados; Attila Fehér; Gábor Rigó
Journal:  Int J Mol Sci       Date:  2021-06-01       Impact factor: 5.923

10.  Alternative oxidase gene induced by nitric oxide is involved in the regulation of ROS and enhances the resistance of Pleurotus ostreatus to heat stress.

Authors:  Ludan Hou; Mengran Zhao; Chenyang Huang; Qi He; Lijiao Zhang; Jinxia Zhang
Journal:  Microb Cell Fact       Date:  2021-07-19       Impact factor: 5.328

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