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電子書籍・電子雑誌Plant biotechnology
巻号32 (2)
Flower col...

Flower color modification in Rosa hybrida by expressing the S-adenosylmethionine : anthocyanin 3′,5′-O-methyltransferase gene from Torenia hybrida

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Flower color modification in Rosa hybrida by expressing the S-adenosylmethionine : anthocyanin 3′,5′-O-methyltransferase gene from Torenia hybrida

国立国会図書館請求記号
Z54-J126
国立国会図書館書誌ID
026560107
国立国会図書館永続的識別子
info:ndljp/pid/11000425
資料種別
記事
著者
Noriko Nakamuraほか
出版者
日本植物細胞分子生物学会
出版年
2015
資料形態
デジタル
掲載誌名
Plant biotechnology 32(2)
掲載ページ
-
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資料詳細

要約等:

We isolated a cDNA encoding <i>S</i>-adenosylmethionine: anthocyanin 3′,5′-<i>O</i>-methyltransferase (A3′5′OMT) from a cDNA library derived from <i>T...

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デジタル

資料種別
記事
著者・編者
Noriko Nakamura
Yukihisa Katsumoto
Filippa Brugliera
出版年月日等
2015
出版年(W3CDTF)
2015
タイトル(掲載誌)
Plant biotechnology
巻号年月日等(掲載誌)
32(2)
掲載巻
32(2)
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/11000425
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/11000424
連携機関・データベース
国立国会図書館 : 国立国会図書館デジタルコレクション

デジタル

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/11000425
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)
026560107
整理区分コード
632

デジタル

要約等
We isolated a cDNA encoding <i>S</i>-adenosylmethionine: anthocyanin 3′,5′-<i>O</i>-methyltransferase (A3′5′OMT) from a cDNA library derived from <i>Torenia hybrida</i> petals that mainly accumulated malvidin type anthocyanins using the petunia A3′OMT cDNA as a probe. The torenia A3′5′OMT shared 52–72% amino acid sequence identity with previously reported AOMTs and belongs to the Group A1 methyltransferase family that also include caffeoyl CoA <i>O</i>-methyltransferase. The recombinant A3′5′OMT produced by <i>Escherichia coli</i> efficiently catalyzed methylation of the 3-glucoside and 3,5-diglucoside of delphinidin and cyanidin, but it did not catalyze the methylation of anthocyanidins, flavonols, or flavones. The torenia <i>A3</i>′<i>5</i>′<i>OMT</i> gene was expressed in <i>Nierembergia</i> sp., the petals of which naturally accumulate anthocyanins derived from delphinidin. The resultant transgenic petals produced methylated anthocyanins, based on malvidin and petunidin, in addition to delphinidin, which indicated that the torenia <i>A3</i>′<i>5</i>′<i>OMT</i> gene was functional in a heterologous plant. Rose petals rarely contain methylated anthocyanins. Transgenic rose petals expressing both a pansy <i>flavonoid 3′,5′-hydroxylase</i> (<i>F3</i>′<i>5</i>′<i>H</i>) and the torenia <i>A3</i>′<i>5</i>′<i>OMT</i> genes accumulated methylated anthocyanins based upon malvidin, petunidin, and peonidin, which comprised up to 88% of the total anthocyanidins, and their magenta color was more brilliant than that of the petals that accumulated delphinidin type anthocyanins by expressing the <i>F3</i>′<i>5</i>′<i>H</i> gene alone. These results indicate that the torenia <i>A3</i>′<i>5</i>′<i>OMT</i> gene is a useful molecular tool for altering and diversifying flower color.
DOI
10.5511/plantbiotechnology.15.0205a
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
We isolated a cDNA encoding <i>S</i>-adenosylmethionine: anthocyanin 3′,5′-<i>O</i>-methyltransferase (A3′5′OMT) from a cDNA library derived from <i>Torenia hybrida</i> petals that mainly accumulated malvidin type anthocyanins using the petunia A3′OMT cDNA as a probe. The torenia A3′5′OMT shared 52–72% amino acid sequence identity with previously reported AOMTs and belongs to the Group A1 methyltransferase family that also include caffeoyl CoA <i>O</i>-methyltransferase. The recombinant A3′5′OMT produced by <i>Escherichia coli</i> efficiently catalyzed methylation of the 3-glucoside and 3,5-diglucoside of delphinidin and cyanidin, but it did not catalyze the methylation of anthocyanidins, flavonols, or flavones. The torenia <i>A3</i>′<i>5</i>′<i>OMT</i> gene was expressed in <i>Nierembergia</i> sp., the petals of which naturally accumulate anthocyanins derived from delphinidin. The resultant transgenic petals produced methylated anthocyanins, based on malvidin and petunidin, in addition to delphinidin, which indicated that the torenia <i>A3</i>′<i>5</i>′<i>OMT</i> gene was functional in a heterologous plant. Rose petals rarely contain methylated anthocyanins. Transgenic rose petals expressing both a pansy <i>flavonoid 3′,5′-hydroxylase</i> (<i>F3</i>′<i>5</i>′<i>H</i>) and the torenia <i>A3</i>′<i>5</i>′<i>OMT</i> genes accumulated methylated anthocyanins based upon malvidin, petunidin, and peonidin, which comprised up to 88% of the total anthocyanidins, and their magenta color was more brilliant than that of the petals that accumulated delphinidin type anthocyanins by expressing the <i>F3</i>′<i>5</i>′<i>H</i> gene alone. These results indicate that the torenia <i>A3</i>′<i>5</i>′<i>OMT</i> gene is a useful molecular tool for altering and diversifying flower color.
オンライン閲覧公開範囲
インターネット公開
参照
Diversification of Chemical Structures of Methoxylated Flavonoids and Genes Encoding Flavonoid-O-Methyltransferases
Molecular cloning of flavonoid biosynthetic genes and biochemical characterization of anthocyanin O-methyltransferase of Nemophila menziesii Hook. and Arn
Recent advances in the research and development of blue flowers
参照
Cloning, Functional Identification and Sequence Analysis of Flavonoid 3′-hydroxylase and Flavonoid 3′,5′-hydroxylase cDNAs Reveals Independent Evolution of Flavonoid 3′,5′-hydroxylase in the Asteraceae Family
Biochemical and Molecular Characterization of a Novel UDP-Glucose:Anthocyanin 3′-<i>O</i>-Glucosyltransferase, a Key Enzyme for Blue Anthocyanin Biosynthesis, from Gentian
Cloning and molecular analysis of structural genes involved in anthocyanin biosynthesis and expressed in a forma-specific manner in Perilla frutescens
A DNA Transformation–Competent Arabidopsis Genomic Library in Agrobacterium
Metabolite annotations based on the integration of mass spectral information
Tapetum‐specific location of a cation‐dependent <i>O</i>‐methyltransferase in <i>Arabidopsis thaliana</i>
Spectral methods of characterizing anthocyanins
Cyclic malyl anthocyanins in Dianthus caryophyllus
Characterization of a Vitis vinifera cv. Cabernet Sauvignon 3′,5′-O-methyltransferase showing strong preference for anthocyanins and glycosylated flavonols
Flower colour and cytochromes P450 <sup/>
A Novel Cation-Dependent<i>O-</i>Methyltransferase Involved in Anthocyanin Methylation in Grapevine
Anthocyanins in flowers of genus Rosa, sections Cinnamomeae (=Rosa), Chinenses, Gallicanae and some modern garden roses
A Novel Mg2+-dependent O-Methyltransferase in the Phenylpropanoid Metabolism of Mesembryanthemum crystallinum
Molecular and biochemical characterization of torenia flavonoid 3′-hydroxylase and flavone synthase II and modification of flower color by modulating the expression of these genes
Genetic Control and Evolution of Anthocyanin Methylation
Transcription factors, sucrose, and sucrose metabolic genes interact to regulate potato phenylpropanoid metabolism
Blue flower color development by anthocyanins: from chemical structure to cell physiology
Biosynthesis of plant pigments: anthocyanins, betalains and carotenoids
Structure, function, and evolution of plant<i>O</i>-methyltransferases
Metabolic Engineering of Flower Color Pathways Using Cytochromes P450
Isolation and characterization of the fragrant cyclamen O-methyltransferase involved in flower coloration
Flower flavonol and anthocyanin distribution in subgenus Rosa
An <i>O‐</i>methyltransferase modifies accumulation of methylated anthocyanins in seedlings of tomato
The Evolution of Flavonoids and Their Genes
Efficient Promoter Cassettes for Enhanced Expression of Foreign Genes in Dicotyledonous and Monocotyledonous Plants
pBINPLUS: An improved plant transformation vector based on pBIN19
Engineering of the Rose Flavonoid Biosynthetic Pathway Successfully Generated Blue-Hued Flowers Accumulating Delphinidin
Generation of pink flower varieties from blue Torenia hybrida by redirecting the flavonoid biosynthetic pathway from delphinidin to pelargonidin
Red-purple flower due to delphinidin 3,5-diglucoside, a novel pigment for Cyclamen spp., generated by ion-beam irradiation
Identification of Cyanidin 3-<i>O</i>-(3″,6″-<i>O</i>-Dimalonyl-<i>β</i>-glucopyranoside) as a Flower Pigment of Chrysanthemum (<i>Dendranthema grandiflorum</i>)
Molecular characterization of the flavonoid biosynthetic pathway and flower color modification of Nierembergia sp
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NII論文ID
130005085989