Literature DB >> 18026987

High frequency (900 MHz) low amplitude (5 V m-1) electromagnetic field: a genuine environmental stimulus that affects transcription, translation, calcium and energy charge in tomato.

David Roux1, Alain Vian, Sébastien Girard, Pierre Bonnet, Françoise Paladian, Eric Davies, Gérard Ledoigt.   

Abstract

Using an especially-designed facility, the Mode Stirred Reverberation Chamber, we exposed tomato plants (Lycopersicon esculentum Mill. VFN8) to low level (900 MHz, 5 V m(-1)) electromagnetic fields for a short period (10 min) and measured changes in abundance of three specific mRNA soon after exposure. Within minutes of electromagnetic stimulation, stress-related mRNA (calmodulin, calcium-dependent protein kinase and proteinase inhibitor) accumulated in a rapid, large and 3-phase manner typical of an environmental stress response. Accumulation of these transcripts into the polysomal RNA also took place (indicating that the encoded proteins were translated) but was delayed (indicating that newly-synthesized mRNA was not immediately recruited into polysomes). Transcript accumulation was maximal at normal Ca(2+) levels and was depressed at higher Ca(2+), especially for those encoding calcium-binding proteins. Removal of Ca(2+) (by addition of chelating agents or Ca(2+) channel blocker) led to total suppression of mRNA accumulation. Finally, 30 min after the electromagnetic treatment, ATP concentration and adenylate energy charge were transiently decreased, while transcript accumulation was totally prevented by application of the uncoupling reagent, CCCP. These responses occur very soon after exposure, strongly suggesting that they are the direct consequence of application of radio-frequency fields and their similarities to wound responses strongly suggests that this radiation is perceived by plants as an injurious stimulus.

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Year:  2007        PMID: 18026987     DOI: 10.1007/s00425-007-0664-2

Source DB:  PubMed          Journal:  Planta        ISSN: 0032-0935            Impact factor:   4.116


  30 in total

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2.  Microwave irradiation affects gene expression in plants.

Authors:  A Vian; D Roux; S Girard; P Bonnet; F Paladian; E Davies; G Ledoigt
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5.  Molecular cloning and characterization of a tomato cDNA encoding a systemically wound-inducible bZIP DNA-binding protein.

Authors:  B Stanković; A Vian; C Henry-Vian; E Davies
Journal:  Planta       Date:  2000-12       Impact factor: 4.116

6.  Morphological responses and molecular modifications in tomato plants after mechanical stimulation.

Authors:  N Depège; C Thonat; C Coutand; J L Julien; N Boyer
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10.  Intercellular communication in plants: evidence for two rapidly transmitted systemic signals generated in response to electromagnetic field stimulation in tomato.

Authors:  Elisabeth Beaubois; Sebastien Girard; Sebastien Lallechere; Eric Davies; Françoise Paladian; Pierre Bonnet; Gerard Ledoigt; Alain Vian
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  9 in total

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2.  A possible role for extra-cellular ATP in plant responses to high frequency, low amplitude electromagnetic field.

Authors:  David Roux; Catherine Faure; Pierre Bonnet; Sébastien Girard; Gérard Ledoigt; Eric Davies; Michel Gendraud; Françoise Paladian; Alain Vian
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Review 3.  Use of various biomarkers to explore the effects of GSM and GSM-like radiations on flowering plants.

Authors:  Muhammad Daud Khan; Shafaqat Ali; Azizullah Azizullah; Zhu Shuijin
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4.  Sunflower exposed to high-intensity microwave-frequency electromagnetic field: electrophysiological response requires a mechanical injury to initiate.

Authors:  David Roux; Alexandre Catrain; Sébastien Lallechere; Jean-Christophe Joly
Journal:  Plant Signal Behav       Date:  2015

5.  Is gene activity in plant cells affected by UMTS-irradiation? A whole genome approach.

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6.  Exposure to 2100 MHz electromagnetic field radiations induces reactive oxygen species generation in Allium cepa roots.

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Journal:  J Microsc Ultrastruct       Date:  2017-09-08

7.  Treatment of Common Sunflower (Helianthus annus L.) Seeds with Radio-frequency Electromagnetic Field and Cold Plasma Induces Changes in Seed Phytohormone Balance, Seedling Development and Leaf Protein Expression.

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Journal:  Sci Rep       Date:  2019-04-23       Impact factor: 4.379

Review 8.  Electrohypersensitivity as a Newly Identified and Characterized Neurologic Pathological Disorder: How to Diagnose, Treat, and Prevent It.

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Review 9.  Plant Responses to High Frequency Electromagnetic Fields.

Authors:  Alain Vian; Eric Davies; Michel Gendraud; Pierre Bonnet
Journal:  Biomed Res Int       Date:  2016-02-14       Impact factor: 3.246

  9 in total

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