CmHY5 functions in apigenin biosynthesis by regulating flavone synthase II expression in chrysanthemum flowers
暂无分享,去创建一个
Junping Gao | Conglin Huang | Lei Liu | Yanjie Xu | B. Hong | C. Luo | Dongliang Chen | Chao Ma | Hua Liu | Xi Cheng | Jian Zhao
[1] Sumei Chen,et al. A novel transcription factor CmMYB012 inhibits flavone and anthocyanin biosynthesis in response to high temperatures in chrysanthemum , 2021, Horticulture research.
[2] Sumei Chen,et al. Functional identification of a flavone synthase and a flavonol synthase genes affecting flower color formation in Chrysanthemum morifolium. , 2021, Plant physiology and biochemistry : PPB.
[3] Ruoting Zhan,et al. Gene mining and identification of a flavone synthase II involved in flavones biosynthesis by transcriptomic analysis and targeted flavonoid profiling in Chrysanthemum indicum L. , 2019, Industrial Crops and Products.
[4] Boyan Gao,et al. Chemical compositions of chrysanthemum teas and their anti-inflammatory and antioxidant properties. , 2019, Food chemistry.
[5] E. Grotewold,et al. Apigenin produced by maize flavone synthase I and II protects plants against UV-B-induced damage. , 2018, Plant, cell & environment.
[6] K. R. Markham,et al. FLAVONOIDS: Chemistry, Biochemistry and Applications , 2018 .
[7] Haitao Shi,et al. The zinc-finger transcription factor ZAT6 is essential for hydrogen peroxide induction of anthocyanin synthesis in Arabidopsis , 2018, Plant Molecular Biology.
[8] S. Downie,et al. Genome-wide searches and molecular analyses highlight the unique evolutionary path of flavone synthase I (FNSI) in Apiaceae. , 2018, Genome.
[9] A. Fernie,et al. Differentially evolved glucosyltransferases determine natural variation of rice flavone accumulation and UV-tolerance , 2017, Nature Communications.
[10] Junping Gao,et al. Control of chrysanthemum flowering through integration with an aging pathway , 2017, Nature Communications.
[11] S. Schwartz,et al. Flavones: Food Sources, Bioavailability, Metabolism, and Bioactivity. , 2017, Advances in nutrition.
[12] J. Mundy,et al. MYB75 Phosphorylation by MPK4 Is Required for Light-Induced Anthocyanin Accumulation in Arabidopsis[OPEN] , 2016, Plant Cell.
[13] J. Botto,et al. The Multifaceted Roles of HY5 in Plant Growth and Development. , 2016, Molecular plant.
[14] Huiyong Zhang,et al. Repression of MYBL2 by Both microRNA858a and HY5 Leads to the Activation of Anthocyanin Biosynthetic Pathway in Arabidopsis. , 2016, Molecular plant.
[15] Min-Ji Bak,et al. Role of dietary bioactive natural products in estrogen receptor-positive breast cancer. , 2016, Seminars in cancer biology.
[16] Hua-Bin Li,et al. Natural Polyphenols for Prevention and Treatment of Cancer , 2016, Nutrients.
[17] Shan‐Shan Li,et al. Flavone synthases from Lonicera japonica and L. macranthoides reveal differential flavone accumulation , 2016, Scientific Reports.
[18] E. Grotewold,et al. The Identification of Maize and Arabidopsis Type I FLAVONE SYNTHASEs Links Flavones with Hormones and Biotic Interactions1[OPEN] , 2015, Plant Physiology.
[19] A. Osbourn,et al. MYB Transcription Factors as Regulators of Phenylpropanoid Metabolism in Plants. , 2015, Molecular plant.
[20] U. I. Zakai,et al. Tricin, a Flavonoid Monomer in Monocot Lignification1[OPEN] , 2015, Plant Physiology.
[21] U. I. Zakai,et al. Tricin, A Flavonoid Monomer in Monocot Lignification , 2015 .
[22] Kathleen T DiNapoli,et al. The anthocyanin reduced Tomato Mutant Demonstrates the Role of Flavonols in Tomato Lateral Root and Root Hair Development1[W][OPEN] , 2014, Plant Physiology.
[23] Qian Wei,et al. A Zinc Finger Protein Regulates Flowering Time and Abiotic Stress Tolerance in Chrysanthemum by Modulating Gibberellin Biosynthesis[C][W][OPEN] , 2014, Plant Cell.
[24] R. Scott,et al. Flavonoids and the regulation of seed size in Arabidopsis. , 2014, Biochemical Society transactions.
[25] Koichiro Tamura,et al. MEGA6: Molecular Evolutionary Genetics Analysis version 6.0. , 2013, Molecular biology and evolution.
[26] L. Xiong,et al. A novel integrated method for large-scale detection, identification, and quantification of widely targeted metabolites: application in the study of rice metabolomics. , 2013, Molecular plant.
[27] C. Hocart,et al. Alteration of flavonoid accumulation patterns in transparent testa mutants disturbs auxin transport, gravity responses, and imparts long-term effects on root and shoot architecture , 2013, Planta.
[28] C. Hocart,et al. Alteration of flavonoid accumulation patterns in transparent testa mutants disturbs auxin transport, gravity responses, and imparts long-term effects on root and shoot architecture , 2013, Planta.
[29] Rongcheng Lin,et al. Arabidopsis Chromatin Remodeling Factor PICKLE Interacts with Transcription Factor HY5 to Regulate Hypocotyl Cell Elongation[C][W] , 2013, Plant Cell.
[30] M. Yoshikawa,et al. Comparative evaluation of cultivars of Chrysanthemum morifolium flowers by HPLC-DAD-ESI/MS analysis and antiallergic assay. , 2012, Journal of agricultural and food chemistry.
[31] S. Zhong,et al. High-throughput illumina strand-specific RNA sequencing library preparation. , 2011, Cold Spring Harbor protocols.
[32] Christian Kappel,et al. Recent advances in the transcriptional regulation of the flavonoid biosynthetic pathway. , 2011, Journal of experimental botany.
[33] G. King,et al. A SQUAMOSA MADS Box Gene Involved in the Regulation of Anthocyanin Accumulation in Bilberry Fruits1[W][OA] , 2010, Plant Physiology.
[34] A. Allan,et al. Kiwifruit EIL and ERF Genes Involved in Regulating Fruit Ripening1[W] , 2010, Plant Physiology.
[35] K. Furtwängler,et al. Flavone synthase II (CYP93B16) from soybean (Glycine max L.). , 2010, Phytochemistry.
[36] S. Shukla,et al. Apigenin: A Promising Molecule for Cancer Prevention , 2010, Pharmaceutical Research.
[37] R. Stracke,et al. The Arabidopsis bZIP transcription factor HY5 regulates expression of the PFG1/MYB12 gene in response to light and ultraviolet-B radiation. , 2010, Plant, cell & environment.
[38] Kumi Yoshida,et al. Blue flower color development by anthocyanins: from chemical structure to cell physiology. , 2009, Natural product reports.
[39] B. Choo,et al. Anti-inflammatory activity of Chrysanthemum indicum extract in acute and chronic cutaneous inflammation. , 2009, Journal of ethnopharmacology.
[40] Joong-Hoon Ahn,et al. Analysis of flavonoids and characterization of theOsFNS gene involved in flavone biosynthesis in Rice , 2008, Journal of Plant Biology.
[41] Young Hun Song,et al. DNA-Binding Study Identifies C-Box and Hybrid C/G-Box or C/A-Box Motifs as High-Affinity Binding Sites for STF1 and LONG HYPOCOTYL5 Proteins1[C][W][OA] , 2008, Plant Physiology.
[42] Daisuke Shibata,et al. Arabidopsis TRANSPARENT TESTA GLABRA2 Is Directly Regulated by R2R3 MYB Transcription Factors and Is Involved in Regulation of GLABRA2 Transcription in Epidermal Differentiation[W] , 2007, The Plant Cell Online.
[43] C. Kong,et al. Activity and allelopathy of soil of flavone o-glycosides from rice. , 2007, Journal of agricultural and food chemistry.
[44] G. Choi,et al. PIF3 regulates anthocyanin biosynthesis in an HY5-dependent manner with both factors directly binding anthocyanin biosynthetic gene promoters in Arabidopsis. , 2007, The Plant journal : for cell and molecular biology.
[45] Junping Gao,et al. Expression of the Arabidopsis DREB1A gene in transgenic chrysanthemum enhances tolerance to low temperature , 2006 .
[46] A. Mithöfer,et al. Flavones and flavone synthases. , 2005, Phytochemistry.
[47] Peifen Zhang,et al. A maize QTL for silk maysin levels contains duplicated Myb-homologous genes which jointly regulate flavone biosynthesis , 2003, Plant Molecular Biology.
[48] G. Weissenböck,et al. Contribution of phenolic compounds to the UV-B screening capacity of developing barley primary leaves in relation to DNA damage and repair under elevated UV-B levels. , 2003, Phytochemistry.
[49] X. Deng,et al. Two interacting bZIP proteins are direct targets of COP1-mediated control of light-dependent gene expression in Arabidopsis. , 2002, Genes & development.
[50] Kathleen Marchal,et al. PlantCARE, a database of plant cis-acting regulatory elements and a portal to tools for in silico analysis of promoter sequences , 2002, Nucleic Acids Res..
[51] H. Spaink,et al. Auxin transport inhibition precedes root nodule formation in white clover roots and is regulated by flavonoids and derivatives of chitin oligosaccharides. , 1998, The Plant journal : for cell and molecular biology.
[52] K. Okada,et al. The Arabidopsis HY5 gene encodes a bZIP protein that regulates stimulus-induced development of root and hypocotyl. , 1997, Genes & development.
[53] J. W. Frost,et al. A plant flavone, luteolin, induces expression of Rhizobium meliloti nodulation genes. , 1986, Science.
[54] M. Koornneef,et al. Genetic control of light-inhibited hypocotyl elongation in Arabidopsis thaliana (L.) , 1980 .