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Sustainable bioenergy for climate mitigation: developing drought-tolerant trees and grasses.

Identifieur interne : 000697 ( Main/Exploration ); précédent : 000696; suivant : 000698

Sustainable bioenergy for climate mitigation: developing drought-tolerant trees and grasses.

Auteurs : G. Taylor [Royaume-Uni, États-Unis] ; I S Donnison [Royaume-Uni] ; D. Murphy-Bokern [Allemagne] ; M. Morgante [Italie] ; M-B Bogeat-Triboulot [France] ; R. Bhalerao [Suède] ; M. Hertzberg [Suède] ; A. Polle [Allemagne] ; A. Harfouche [Italie] ; F. Alasia [Italie] ; V. Petoussi [Grèce] ; D. Trebbi [Italie] ; K. Schwarz [Allemagne] ; J J B. Keurentjes [Pays-Bas] ; M. Centritto [Italie] ; B. Genty [France] ; J. Flexas [Espagne] ; E. Grill [Allemagne] ; S. Salvi [Italie] ; W J Davies [Royaume-Uni]

Source :

RBID : pubmed:31665761

Descripteurs français

English descriptors

Abstract

BACKGROUND AND AIMS

Bioenergy crops are central to climate mitigation strategies that utilize biogenic carbon, such as BECCS (bioenergy with carbon capture and storage), alongside the use of biomass for heat, power, liquid fuels and, in the future, biorefining to chemicals. Several promising lignocellulosic crops are emerging that have no food role - fast-growing trees and grasses - but are well suited as bioenergy feedstocks, including Populus, Salix, Arundo, Miscanthus, Panicum and Sorghum.

SCOPE

These promising crops remain largely undomesticated and, until recently, have had limited germplasm resources. In order to avoid competition with food crops for land and nature conservation, it is likely that future bioenergy crops will be grown on marginal land that is not needed for food production and is of poor quality and subject to drought stress. Thus, here we define an ideotype for drought tolerance that will enable biomass production to be maintained in the face of moderate drought stress. This includes traits that can readily be measured in wide populations of several hundred unique genotypes for genome-wide association studies, alongside traits that are informative but can only easily be assessed in limited numbers or training populations that may be more suitable for genomic selection. Phenotyping, not genotyping, is now the major bottleneck for progress, since in all lignocellulosic crops studied extensive use has been made of next-generation sequencing such that several thousand markers are now available and populations are emerging that will enable rapid progress for drought-tolerance breeding. The emergence of novel technologies for targeted genotyping by sequencing are particularly welcome. Genome editing has already been demonstrated for Populus and offers significant potential for rapid deployment of drought-tolerant crops through manipulation of ABA receptors, as demonstrated in Arabidopsis, with other gene targets yet to be tested.

CONCLUSIONS

Bioenergy is predicted to be the fastest-developing renewable energy over the coming decade and significant investment over the past decade has been made in developing genomic resources and in collecting wild germplasm from within the natural ranges of several tree and grass crops. Harnessing these resources for climate-resilient crops for the future remains a challenge but one that is likely to be successful.


DOI: 10.1093/aob/mcz146
PubMed: 31665761
PubMed Central: PMC6821384


Affiliations:


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<nlm:affiliation>Department for Innovation in Biological, Agro-food and Forest Systems, University of Tuscia, Viterbo, Italy.</nlm:affiliation>
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<name sortKey="Alasia, F" sort="Alasia, F" uniqKey="Alasia F" first="F" last="Alasia">F. Alasia</name>
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<nlm:affiliation>Franco Alasia Vivai, Strada Solerette, Savigliano, Italy.</nlm:affiliation>
<country xml:lang="fr">Italie</country>
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<name sortKey="Petoussi, V" sort="Petoussi, V" uniqKey="Petoussi V" first="V" last="Petoussi">V. Petoussi</name>
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<nlm:affiliation>Department of Sociology, University of Crete, Rethymno, Greece.</nlm:affiliation>
<country xml:lang="fr">Grèce</country>
<wicri:regionArea>Department of Sociology, University of Crete, Rethymno</wicri:regionArea>
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<name sortKey="Trebbi, D" sort="Trebbi, D" uniqKey="Trebbi D" first="D" last="Trebbi">D. Trebbi</name>
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<nlm:affiliation>Geneticlab, Via Roveredo, Pordenone, Italy.</nlm:affiliation>
<country xml:lang="fr">Italie</country>
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<nlm:affiliation>Julius Kühn-Institut (JKI) Bundesforschungsinstitut für Kulturpflanzen, Institute for Crop and Soil Science, Bundesallee 50, D-38116 Braunschweig, Germany.</nlm:affiliation>
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<wicri:regionArea>Department of Agricultural and Food Sciences, University of Bologna, Viale Fanin, Bologna</wicri:regionArea>
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<name sortKey="Davies, W J" sort="Davies, W J" uniqKey="Davies W" first="W J" last="Davies">W J Davies</name>
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<title level="j">Annals of botany</title>
<idno type="eISSN">1095-8290</idno>
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<term>Climate (MeSH)</term>
<term>Crops, Agricultural (MeSH)</term>
<term>Droughts (MeSH)</term>
<term>Genome-Wide Association Study (MeSH)</term>
<term>Trees (MeSH)</term>
</keywords>
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<term>Arbres (MeSH)</term>
<term>Climat (MeSH)</term>
<term>Produits agricoles (MeSH)</term>
<term>Sécheresses (MeSH)</term>
<term>Étude d'association pangénomique (MeSH)</term>
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<keywords scheme="MESH" xml:lang="en">
<term>Climate</term>
<term>Crops, Agricultural</term>
<term>Droughts</term>
<term>Genome-Wide Association Study</term>
<term>Trees</term>
</keywords>
<keywords scheme="MESH" xml:lang="fr">
<term>Arbres</term>
<term>Climat</term>
<term>Produits agricoles</term>
<term>Sécheresses</term>
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<div type="abstract" xml:lang="en">
<p>
<b>BACKGROUND AND AIMS</b>
</p>
<p>Bioenergy crops are central to climate mitigation strategies that utilize biogenic carbon, such as BECCS (bioenergy with carbon capture and storage), alongside the use of biomass for heat, power, liquid fuels and, in the future, biorefining to chemicals. Several promising lignocellulosic crops are emerging that have no food role - fast-growing trees and grasses - but are well suited as bioenergy feedstocks, including Populus, Salix, Arundo, Miscanthus, Panicum and Sorghum.</p>
</div>
<div type="abstract" xml:lang="en">
<p>
<b>SCOPE</b>
</p>
<p>These promising crops remain largely undomesticated and, until recently, have had limited germplasm resources. In order to avoid competition with food crops for land and nature conservation, it is likely that future bioenergy crops will be grown on marginal land that is not needed for food production and is of poor quality and subject to drought stress. Thus, here we define an ideotype for drought tolerance that will enable biomass production to be maintained in the face of moderate drought stress. This includes traits that can readily be measured in wide populations of several hundred unique genotypes for genome-wide association studies, alongside traits that are informative but can only easily be assessed in limited numbers or training populations that may be more suitable for genomic selection. Phenotyping, not genotyping, is now the major bottleneck for progress, since in all lignocellulosic crops studied extensive use has been made of next-generation sequencing such that several thousand markers are now available and populations are emerging that will enable rapid progress for drought-tolerance breeding. The emergence of novel technologies for targeted genotyping by sequencing are particularly welcome. Genome editing has already been demonstrated for Populus and offers significant potential for rapid deployment of drought-tolerant crops through manipulation of ABA receptors, as demonstrated in Arabidopsis, with other gene targets yet to be tested.</p>
</div>
<div type="abstract" xml:lang="en">
<p>
<b>CONCLUSIONS</b>
</p>
<p>Bioenergy is predicted to be the fastest-developing renewable energy over the coming decade and significant investment over the past decade has been made in developing genomic resources and in collecting wild germplasm from within the natural ranges of several tree and grass crops. Harnessing these resources for climate-resilient crops for the future remains a challenge but one that is likely to be successful.</p>
</div>
</front>
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<Month>10</Month>
<Day>29</Day>
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<Title>Annals of botany</Title>
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<ArticleTitle>Sustainable bioenergy for climate mitigation: developing drought-tolerant trees and grasses.</ArticleTitle>
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<AbstractText Label="BACKGROUND AND AIMS">Bioenergy crops are central to climate mitigation strategies that utilize biogenic carbon, such as BECCS (bioenergy with carbon capture and storage), alongside the use of biomass for heat, power, liquid fuels and, in the future, biorefining to chemicals. Several promising lignocellulosic crops are emerging that have no food role - fast-growing trees and grasses - but are well suited as bioenergy feedstocks, including Populus, Salix, Arundo, Miscanthus, Panicum and Sorghum.</AbstractText>
<AbstractText Label="SCOPE">These promising crops remain largely undomesticated and, until recently, have had limited germplasm resources. In order to avoid competition with food crops for land and nature conservation, it is likely that future bioenergy crops will be grown on marginal land that is not needed for food production and is of poor quality and subject to drought stress. Thus, here we define an ideotype for drought tolerance that will enable biomass production to be maintained in the face of moderate drought stress. This includes traits that can readily be measured in wide populations of several hundred unique genotypes for genome-wide association studies, alongside traits that are informative but can only easily be assessed in limited numbers or training populations that may be more suitable for genomic selection. Phenotyping, not genotyping, is now the major bottleneck for progress, since in all lignocellulosic crops studied extensive use has been made of next-generation sequencing such that several thousand markers are now available and populations are emerging that will enable rapid progress for drought-tolerance breeding. The emergence of novel technologies for targeted genotyping by sequencing are particularly welcome. Genome editing has already been demonstrated for Populus and offers significant potential for rapid deployment of drought-tolerant crops through manipulation of ABA receptors, as demonstrated in Arabidopsis, with other gene targets yet to be tested.</AbstractText>
<AbstractText Label="CONCLUSIONS">Bioenergy is predicted to be the fastest-developing renewable energy over the coming decade and significant investment over the past decade has been made in developing genomic resources and in collecting wild germplasm from within the natural ranges of several tree and grass crops. Harnessing these resources for climate-resilient crops for the future remains a challenge but one that is likely to be successful.</AbstractText>
<CopyrightInformation>© The Author(s) 2019. Published by Oxford University Press on behalf of the Annals of Botany Company. All rights reserved. For Permissions, please email: journals.permissions@oup.com.</CopyrightInformation>
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</AffiliationInfo>
<AffiliationInfo>
<Affiliation>Department of Plant Sciences, University of California at Davis, Davis, CA, USA.</Affiliation>
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<Keyword MajorTopicYN="Y">lignocellulosic crop</Keyword>
<Keyword MajorTopicYN="Y">marginal land</Keyword>
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