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電子書籍・電子雑誌Plant biotechnology
巻号31 (5)
The geneti...

The genetic basis of foliar terpene yield : implications for breeding and profitability of Australian essential oil crops

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The genetic basis of foliar terpene yield : implications for breeding and profitability of Australian essential oil crops

国立国会図書館請求記号
Z54-J126
国立国会図書館書誌ID
026091844
国立国会図書館永続的識別子
info:ndljp/pid/11000386
資料種別
記事
著者
Hamish Webbほか
出版者
日本植物細胞分子生物学会
出版年
2014
資料形態
デジタル
掲載誌名
Plant biotechnology 31(5)
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The family Myrtaceae is known for its high foliar terpene concentrations as well as significant qualitative and quantitative variation in foliar terpe...

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資料種別
記事
著者・編者
Hamish Webb
William J. Foley
Carsten Külheim
出版年月日等
2014
出版年(W3CDTF)
2014
タイトル(掲載誌)
Plant biotechnology
巻号年月日等(掲載誌)
31(5)
掲載巻
31(5)
ISSN(掲載誌)
1347-6114
ISSN-L(掲載誌)
1342-4580
本文の言語コード
eng
国立国会図書館永続的識別子
info:ndljp/pid/11000386
コレクション(共通)
コレクション(障害者向け資料:レベル1)
コレクション(個別)
国立国会図書館デジタルコレクション > 電子書籍・電子雑誌 > 学術機関 > 学協会
収集根拠
インターネット資料収集保存事業(WARP)
受理日(W3CDTF)
2017-12-08T10:56:38+09:00
保存日(W3CDTF)
2015-08-15
記録形式(IMT)
application/pdf
オンライン閲覧公開範囲
インターネット公開
遠隔複写可否(NDL)
不可
掲載誌(国立国会図書館永続的識別子)
info:ndljp/pid/11000383
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国立国会図書館 : 国立国会図書館デジタルコレクション

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コレクション(個別)
国立国会図書館デジタルコレクション > 電子書籍・電子雑誌 > 学術機関 > 学協会
オンライン閲覧公開範囲
インターネット公開
遠隔複写可否(NDL)
不可
所蔵機関
国立国会図書館
請求記号
Z54-J126
関連情報(国立国会図書館永続的識別子)
info:ndljp/pid/11000386
連携機関・データベース
国立国会図書館 : 国立国会図書館雑誌記事索引
書誌ID(NDLBibID)
026091844
整理区分コード
632

デジタル

要約等
The family Myrtaceae is known for its high foliar terpene concentrations as well as significant qualitative and quantitative variation in foliar terpenes between taxa, populations and individuals. To date, few studies have investigated the genetic and biochemical processes, which underlie this variation, much of which is known to be under genetic control. Differences in yield are both ecologically and commercially important and a better understanding of its basis will allow a greater understanding of Australian ecosystems as well as improve commercial viability of essential oil industries. Over the past decade a good understanding of the genes involved in terpene biosynthesis has developed in other species and several important regulatory steps have been identified. Much of this work has been done in transgenic plants, so our understanding at a molecular level is strong. Nonetheless, it remains unclear if these processes are transferrable to wild populations, or indeed how ecologically important quantitative variation in terpenoids arise and are maintained in natural ecosystems. In this review we will summarize what is known about terpene biosynthesis and the control of flux through the terpene biosynthetic pathways. We will then argue that this platform of work provides a great resource for Myrtaceae, as well as other plants, to identify candidate genes that control flux through the biosynthetic pathways and how this will inform further studies into the ecological implications of quantitative variation of terpenes. Work into terpene biosynthesis would also provide a framework to improve the profitability of essential oil crops.
DOI
10.5511/plantbiotechnology.14.1009a
オンライン閲覧公開範囲
インターネット公開
連携機関・データベース
科学技術振興機構 : J-STAGE

デジタル

要約等
The family Myrtaceae is known for its high foliar terpene concentrations as well as significant qualitative and quantitative variation in foliar terpenes between taxa, populations and individuals. To date, few studies have investigated the genetic and biochemical processes, which underlie this variation, much of which is known to be under genetic control. Differences in yield are both ecologically and commercially important and a better understanding of its basis will allow a greater understanding of Australian ecosystems as well as improve commercial viability of essential oil industries. Over the past decade a good understanding of the genes involved in terpene biosynthesis has developed in other species and several important regulatory steps have been identified. Much of this work has been done in transgenic plants, so our understanding at a molecular level is strong. Nonetheless, it remains unclear if these processes are transferrable to wild populations, or indeed how ecologically important quantitative variation in terpenoids arise and are maintained in natural ecosystems. In this review we will summarize what is known about terpene biosynthesis and the control of flux through the terpene biosynthetic pathways. We will then argue that this platform of work provides a great resource for Myrtaceae, as well as other plants, to identify candidate genes that control flux through the biosynthetic pathways and how this will inform further studies into the ecological implications of quantitative variation of terpenes. Work into terpene biosynthesis would also provide a framework to improve the profitability of essential oil crops.
参照
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Eucalyptus camaldulensis: volatiles from immature flowers and high production of 1,8-cineole and β-pinene by in vitro cultures
Elicitor induced activation of the methylerythritol phosphate pathway toward phytoalexins biosynthesis in rice
Ecological Example of Conditioned Flavor Aversion in Plant–Herbivore Interactions: Effect of Terpenes of Eucalyptus Leaves on Feeding by Common Ringtail and Brushtail Possums
Terpenes and phenolics in response to nitrogen fertilization: A test of the carbon/nutrient balance hypothesis
The Genome of Black Cottonwood, <i>Populus trichocarpa</i> (Torr. & Gray)
On the monoterpene emission under heat stress and on the increased thermotolerance of leaves of Quercus ilex L. fumigated with selected monoterpenes
(−)-Menthol biosynthesis and molecular genetics
Differential expression of three 1-deoxy-D-xylulose-5-phosphate synthase genes in rice
The Yield of Essential Oils in Melaleuca alternifolia (Myrtaceae) Is Regulated through Transcript Abundance of Genes in the MEP Pathway
Plastid signalling to the nucleus and beyond
The family of terpene synthases in plants: a mid‐size family of genes for specialized metabolism that is highly diversified throughout the kingdom
Isoprene Increases Thermotolerance of Isoprene-Emitting Species
Selective herbivory by Christmas beetles in response to intraspecific variation in Eucalyptus terpenoids
Regulation of carotenoid biosynthesis in plants: evidence for a key role of hydroxymethylbutenyl diphosphate reductase in controlling the supply of plastidial isoprenoid precursors
Intraspecific variation in leaf oils of Melaleuca alternifolia (Myrtaceae)
A Biochemical Interpretation of Terpene Chemotypes in Melaleuca alternifolia
Genetic parameters and expected gains from selection for monoterpene yields in Petford Eucalyptus camaldulensis
Genetic Evidence for the Role of Isopentenyl Diphosphate Isomerases in the Mevalonate Pathway and Plant Development in Arabidopsis
Deoxyxylulose phosphate pathway to terpenoids
Terpene synthases and the regulation, diversity and biological roles of terpene metabolism
Genetics of terpenes I. Gene control of monoterpene levels in Pinus monticola dougl.
Isolation of intact sub-dermal secretory cavities from Eucalyptus
The Maize Gene<i>terpene synthase 1</i>Encodes a Sesquiterpene Synthase Catalyzing the Formation of (<i>E</i>)-β-Farnesene, (<i>E</i>)-Nerolidol, and (<i>E</i>,<i>E</i>)-Farnesol after Herbivore Damage
Mountain Pine Beetle Attack Associated with Low Levels of 4-Allylanisole in Ponderosa Pine
A unified mechanism of action for volatile isoprenoids in plant abiotic stress
Terpenoids in Plant Signaling: Chemical Ecology
Transgenic, non‐isoprene emitting poplars don’t like it hot
Quantitative trait loci for foliar terpenes in a global eucalypt species
Enhanced flux through the methylerythritol 4-phosphate pathway in Arabidopsis plants overexpressing deoxyxylulose 5-phosphate reductoisomerase
Genetic gains in oil yields after nine years of breeding Melaleuca alternifolia (Myrtaceae)
Metabolic engineering of the mevalonate and non‐mevalonate isopentenyl diphosphate‐forming pathways for the production of health‐promoting isoprenoids in tomato
The 1-deoxy-d-xylulose 5-phosphate synthase gene co-localizes with a major QTL affecting monoterpene content in grapevine
A geraniol-synthase gene from
Effects of Terpenes and Phenolic and Flavonoid Glycosides from Douglas Fir on Western Spruce Budworm Larval Growth, Pupal Weight, and Adult Weight
Molecular cloning and characterization of two cDNAs encoding 1-deoxy-d-xylulose 5-phosphate reductoisomerase from Hevea brasiliensis
Arbuscular mycorrhizal fungi induce the non‐mevalonate methylerythritol phosphate pathway of isoprenoid biosynthesis correlated with accumulation of the ‘yellow pigment’ and other apocarotenoids
Investigating the Host-Range of the Rust Fungus Puccinia psidii sensu lato across Tribes of the Family Myrtaceae Present in Australia
The evolution of foliar terpene diversity in Myrtaceae
Plant Volatiles as a Defense against Insect Herbivores
Two copies of 4-(cytidine 5′-diphospho)-2-C-methyl-d-erythritol kinase (CMK) gene in Ginkgo biloba: molecular cloning and functional characterization
Identification of Class 2 1-Deoxy-<scp>D</scp>-xylulose 5-Phosphate Synthase and 1-Deoxy-<scp>D</scp>-xylulose 5-Phosphate Reductoisomerase Genes from<i>Ginkgo biloba</i>and Their Transcription in Embryo Culture with Respect to Ginkgolide Biosynthesis
The nonmevalonate pathway supports both monoterpene and sesquiterpene formation in snapdragon flowers
A systems biology investigation of the MEP/terpenoid and shikimate/phenylpropanoid pathways points to multiple levels of metabolic control in sweet basil glandular trichomes
Effects of resin flow and monoterpene composition on susceptibility of lodgepole pine to attack by the Douglas‐fir pitch moth, <i>Synanthedon novaroensis</i> (Lep., Sesiidae)
Genetic determinants of oil yield in Eucalyptus polybractea R.T. Baker
A molecular perspective on terpene variation in Australian Myrtaceae
Systemic Induction of Monoterpene Biosynthesis in <i>Origanum</i> × <i>majoricum</i> by Soil Bacteria
Why plants emit isoprene
The deoxyxylulose phosphate pathway of isoprenoid biosynthesis: Studies on the mechanisms of the reactions catalyzed by IspG and IspH protein
The Arabidopsis IspH Homolog Is Involved in the Plastid Nonmevalonate Pathway of Isoprenoid Biosynthesis
Terpenoid metabolism.
Two distantly related genes encoding 1‐deoxy‐<scp>d</scp>‐xylulose 5‐phosphate synthases: differential regulation in shoots and apocarotenoid‐accumulating mycorrhizal roots
Cloning, Characterization, and Immunolocalization of a Mycorrhiza-Inducible 1-Deoxy-D-Xylulose 5-Phosphate Reductoisomerase in Arbuscule-Containing Cells of Maize
Identification of Multi-Gene Families Encoding Isopentenyl Diphosphate Isomerase in Plants by Heterologous Complementation in Escherichia coli
Is the Reaction Catalyzed by 3-Hydroxy-3-Methylglutaryl Coenzyme A Reductase a Rate-Limiting Step for Isoprenoid Biosynthesis in Plants?
Crosstalk between cytosolic and plastidial pathways of isoprenoid biosynthesis in Arabidopsis thaliana
Natural variation in the essential oil content of Melaleuca alternifolia Cheel (Myrtaceae)
The accumulation of terpenoid oils does not incur a growth cost in Eucalyptus polybractea seedlings
The molecular basis of quantitative variation in foliar secondary metabolites in <i>Eucalyptus globulus</i>
The influence of micropropagation on growth and coppicing ability of Eucalyptus polybractea
Partial purification and properties of prenyltransferase from Pisum sativum
Chemical Analysis of Volatiles Emitted by Pinus sylvestris After Induction by Insect Oviposition
GENETIC MODIFICATION OF SECONDARY METABOLISM | Terpenoids
Two distinct isopentenyl diphosphate isomerases in cytosol and plastid are differentially induced by environmental stresses in tobacco
Terpene deployment in <i>Eucalyptus polybractea</i> ; relationships with leaf structure, environmental stresses, and growth
Unravelling the regulatory mechanisms that modulate the MEP pathway in higher plants
The discovery of a mevalonate-independent pathway for isoprenoid biosynthesis in bacteria, algae and higher plants†
Nutrients, Antinutrients and Leaf Selection by Captive Koalas (Phascolarctos-Cinereus)
Plants Utilize Isoprene Emission as a Thermotolerance Mechanism
The Evolution of Carbon Allocation to Plant Secondary Metabolites: A Genetic Analysis of Cost in Diplacus aurantiacus
3-Hydroxy-3-Methylglutaryl Coenzyme A Reductase1 Interacts with NORK and Is Crucial for Nodulation in <i>Medicago truncatula</i>
1-Hydroxy-2-methyl-2-(E)-butenyl 4-diphosphate reductase (IDS) is encoded by multicopy genes in gymnosperms Ginkgo biloba and Pinus taeda
Carbon-based Secondary Compounds at Elevated CO<sub>2</sub>
Enhancement of seed phytosterol levels by expression of an N‐terminal truncated <i>Hevea brasiliensis</i> (rubber tree) 3‐hydroxy‐3‐methylglutaryl‐CoA reductase
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Emergency response to the incursion of an exotic myrtaceous rust in Australia
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Isoprenoids content and photosynthetic limitations in rosemary and spearmint plants under water stress
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The grapevine genome sequence suggests ancestral hexaploidization in major angiosperm phyla
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Mosaic resistance in plants
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Intracellular Signalling: The Language of the Chloroplast
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130004721173