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Crop plants with improved culture and quality traits for food, feed and other uses.

Identifieur interne : 000A49 ( Main/Exploration ); précédent : 000A48; suivant : 000A50

Crop plants with improved culture and quality traits for food, feed and other uses.

Auteurs : Fabien Nogué [France] ; Philippe Vergne [France] ; Anne-Marie Chèvre [France] ; Jean-Eric Chauvin [France] ; Oumaya Bouchabké-Coussa [France] ; Annabelle Déjardin [France] ; Elisabeth Chevreau [France] ; Laurence Hibrand-Saint Oyant [France] ; Marianne Mazier [France] ; Pierre Barret [France] ; Emmanuel Guiderdoni [France] ; Christophe Sallaud [France] ; Séverine Foucrier [France] ; Pierre Devaux [France] ; Peter M. Rogowsky [France]

Source :

RBID : pubmed:31321686

Descripteurs français

English descriptors

Abstract

The large French research project GENIUS (2012-2019, https://www6.inra.genius-project_eng/ ) provides a good showcase of current genome editing techniques applied to crop plants. It addresses a large variety of agricultural species (rice, wheat, maize, tomato, potato, oilseed rape, poplar, apple and rose) together with some models (Arabidopsis, Brachypodium, Physcomitrella). Using targeted mutagenesis as its work horse, the project is limited to proof of concept under confined conditions. It mainly covers traits linked to crop culture, such as disease resistance to viruses and fungi, flowering time, plant architecture, tolerance to salinity and plant reproduction but also addresses traits improving the quality of agricultural products for industrial purposes. Examples include virus resistant tomato, early flowering apple and low-amylose starch potato. The wide range of traits illustrates the potential of genome editing towards a more sustainable agriculture through the reduction of pesticides and to the emergence of innovative bio-economy sectors based on custom tailored quality traits.

DOI: 10.1007/s11248-019-00135-4
PubMed: 31321686


Affiliations:


Links toward previous steps (curation, corpus...)


Le document en format XML

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<title level="j">Transgenic research</title>
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<term>Agriculture (trends)</term>
<term>Animals (MeSH)</term>
<term>Arabidopsis (genetics)</term>
<term>Arabidopsis (growth & development)</term>
<term>Brachypodium (genetics)</term>
<term>Brachypodium (growth & development)</term>
<term>Bryopsida (genetics)</term>
<term>Bryopsida (growth & development)</term>
<term>CRISPR-Cas Systems (genetics)</term>
<term>Crops, Agricultural (genetics)</term>
<term>Crops, Agricultural (growth & development)</term>
<term>Gene Editing (methods)</term>
<term>Genome, Plant (genetics)</term>
<term>Mutagenesis (genetics)</term>
<term>Phenotype (MeSH)</term>
</keywords>
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<term>Agriculture (tendances)</term>
<term>Animaux (MeSH)</term>
<term>Arabidopsis (croissance et développement)</term>
<term>Arabidopsis (génétique)</term>
<term>Brachypodium (croissance et développement)</term>
<term>Brachypodium (génétique)</term>
<term>Bryopsida (croissance et développement)</term>
<term>Bryopsida (génétique)</term>
<term>Génome végétal (génétique)</term>
<term>Mutagenèse (génétique)</term>
<term>Phénotype (MeSH)</term>
<term>Produits agricoles (croissance et développement)</term>
<term>Produits agricoles (génétique)</term>
<term>Systèmes CRISPR-Cas (génétique)</term>
<term>Édition de gène (méthodes)</term>
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<term>Arabidopsis</term>
<term>Brachypodium</term>
<term>Bryopsida</term>
<term>Produits agricoles</term>
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<term>Arabidopsis</term>
<term>Brachypodium</term>
<term>Bryopsida</term>
<term>CRISPR-Cas Systems</term>
<term>Crops, Agricultural</term>
<term>Genome, Plant</term>
<term>Mutagenesis</term>
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<term>Arabidopsis</term>
<term>Brachypodium</term>
<term>Bryopsida</term>
<term>Crops, Agricultural</term>
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<term>Arabidopsis</term>
<term>Brachypodium</term>
<term>Bryopsida</term>
<term>Génome végétal</term>
<term>Mutagenèse</term>
<term>Produits agricoles</term>
<term>Systèmes CRISPR-Cas</term>
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<term>Gene Editing</term>
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<keywords scheme="MESH" qualifier="méthodes" xml:lang="fr">
<term>Édition de gène</term>
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<term>Agriculture</term>
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<keywords scheme="MESH" xml:lang="en">
<term>Animals</term>
<term>Phenotype</term>
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<term>Animaux</term>
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<div type="abstract" xml:lang="en">The large French research project GENIUS (2012-2019, https://www6.inra.genius-project_eng/ ) provides a good showcase of current genome editing techniques applied to crop plants. It addresses a large variety of agricultural species (rice, wheat, maize, tomato, potato, oilseed rape, poplar, apple and rose) together with some models (Arabidopsis, Brachypodium, Physcomitrella). Using targeted mutagenesis as its work horse, the project is limited to proof of concept under confined conditions. It mainly covers traits linked to crop culture, such as disease resistance to viruses and fungi, flowering time, plant architecture, tolerance to salinity and plant reproduction but also addresses traits improving the quality of agricultural products for industrial purposes. Examples include virus resistant tomato, early flowering apple and low-amylose starch potato. The wide range of traits illustrates the potential of genome editing towards a more sustainable agriculture through the reduction of pesticides and to the emergence of innovative bio-economy sectors based on custom tailored quality traits.</div>
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<Volume>28</Volume>
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<Year>2019</Year>
<Month>08</Month>
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<Title>Transgenic research</Title>
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<AbstractText>The large French research project GENIUS (2012-2019, https://www6.inra.genius-project_eng/ ) provides a good showcase of current genome editing techniques applied to crop plants. It addresses a large variety of agricultural species (rice, wheat, maize, tomato, potato, oilseed rape, poplar, apple and rose) together with some models (Arabidopsis, Brachypodium, Physcomitrella). Using targeted mutagenesis as its work horse, the project is limited to proof of concept under confined conditions. It mainly covers traits linked to crop culture, such as disease resistance to viruses and fungi, flowering time, plant architecture, tolerance to salinity and plant reproduction but also addresses traits improving the quality of agricultural products for industrial purposes. Examples include virus resistant tomato, early flowering apple and low-amylose starch potato. The wide range of traits illustrates the potential of genome editing towards a more sustainable agriculture through the reduction of pesticides and to the emergence of innovative bio-economy sectors based on custom tailored quality traits.</AbstractText>
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<ForeName>Emmanuel</ForeName>
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<Affiliation>Univ Montpellier, CIRAD, INRA, Montpellier SupAgro, AGAP, 34398, Montpellier, France.</Affiliation>
</AffiliationInfo>
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<LastName>Sallaud</LastName>
<ForeName>Christophe</ForeName>
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<ForeName>Séverine</ForeName>
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<name sortKey="Guiderdoni, Emmanuel" sort="Guiderdoni, Emmanuel" uniqKey="Guiderdoni E" first="Emmanuel" last="Guiderdoni">Emmanuel Guiderdoni</name>
<name sortKey="Hibrand Saint Oyant, Laurence" sort="Hibrand Saint Oyant, Laurence" uniqKey="Hibrand Saint Oyant L" first="Laurence" last="Hibrand-Saint Oyant">Laurence Hibrand-Saint Oyant</name>
<name sortKey="Mazier, Marianne" sort="Mazier, Marianne" uniqKey="Mazier M" first="Marianne" last="Mazier">Marianne Mazier</name>
<name sortKey="Rogowsky, Peter M" sort="Rogowsky, Peter M" uniqKey="Rogowsky P" first="Peter M" last="Rogowsky">Peter M. Rogowsky</name>
<name sortKey="Sallaud, Christophe" sort="Sallaud, Christophe" uniqKey="Sallaud C" first="Christophe" last="Sallaud">Christophe Sallaud</name>
<name sortKey="Vergne, Philippe" sort="Vergne, Philippe" uniqKey="Vergne P" first="Philippe" last="Vergne">Philippe Vergne</name>
</country>
</tree>
</affiliations>
</record>

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