Comparative transcriptome profiling of different tissues from beta-carotene-enhanced transgenic soybean and its non-transgenic counterpart
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Seong-Kon Lee | H. Woo | M. Lim | K. Shin | Yang Qin
[1] Dae Kwan Ko,et al. Transcriptome profiling of transgenic potato plants provides insights into variability caused by plant transformation , 2018, PloS one.
[2] Seong-Kon Lee,et al. Flanking Sequence and Copy-Number Analysis of Transformation Events by Integrating Next-Generation Sequencing Technology with Southern Blot Hybridization , 2017 .
[3] B. Bakan,et al. Assembly of the Cutin Polyester: From Cells to Extracellular Cell Walls , 2017, Plants.
[4] S. Park,et al. Nutritional composition analysis for beta-carotene-enhanced transgenic soybeans (Glycine max L.) , 2017, Applied Biological Chemistry.
[5] J. Rose,et al. CUTIN SYNTHASE 2 Maintains Progressively Developing Cuticular Ridges in Arabidopsis Sepals. , 2017, Molecular plant.
[6] S. Datta,et al. Metabolic Regulation of Carotenoid-Enriched Golden Rice Line , 2016, Front. Plant Sci..
[7] R. Tenhaken,et al. Raffinose Family Oligosaccharides Act As Galactose Stores in Seeds and Are Required for Rapid Germination of Arabidopsis in the Dark , 2016, Front. Plant Sci..
[8] Y. Chung,et al. Assessment of the Response of Beta Carotene Enhanced Transgenic Soybeans to Soybean Mosaic Virus (SMV) , 2016 .
[9] Justin E. Anderson,et al. Genomic variation and DNA repair associated with soybean transgenesis: a comparison to cultivars and mutagenized plants , 2016, BMC Biotechnology.
[10] Cho Hyunsuk,et al. Selection of β-carotene enhanced transgenic soybean containing single-copy transgene and analysis of integration sites. , 2015 .
[11] Monica A. Schmidt,et al. Transgenic soya bean seeds accumulating β-carotene exhibit the collateral enhancements of oleate and protein content traits. , 2015, Plant biotechnology journal.
[12] P. Christou,et al. Combined transcript, proteome, and metabolite analysis of transgenic maize seeds engineered for enhanced carotenoid synthesis reveals pleotropic effects in core metabolism , 2015, Journal of experimental botany.
[13] Qiang Xu,et al. Transcriptomic analysis of differentially expressed genes in an orange-pericarp mutant and wild type in pummelo (Citrus grandis) , 2015, BMC Plant Biology.
[14] H. Kanamori,et al. Whole-Genome Analysis of Herbicide-Tolerant Mutant Rice Generated by Agrobacterium-Mediated Gene Targeting , 2014, Plant & cell physiology.
[15] G. Giuliano. Plant carotenoids: genomics meets multi-gene engineering. , 2014, Current opinion in plant biology.
[16] Björn Usadel,et al. Trimmomatic: a flexible trimmer for Illumina sequence data , 2014, Bioinform..
[17] J. K. Kim,et al. Genetic Modification of the Soybean to Enhance the β-Carotene Content through Seed-Specific Expression , 2012, PloS one.
[18] B. Bakan,et al. Tomato GDSL1 Is Required for Cutin Deposition in the Fruit Cuticle[C][W] , 2012, Plant Cell.
[19] J. Rose,et al. The identification of cutin synthase: formation of the plant polyester cutin , 2012, Nature chemical biology.
[20] Jiannis Ragoussis,et al. Regenerant Arabidopsis Lineages Display a Distinct Genome-Wide Spectrum of Mutations Conferring Variant Phenotypes , 2011, Current Biology.
[21] C. Brearley,et al. A defective ABC transporter of the MRP family, responsible for the bean lpa1 mutation, affects the regulation of the phytic acid pathway, reduces seed myo-inositol and alters ABA sensitivity. , 2011, The New phytologist.
[22] Cristian Chaparro,et al. Transpositional landscape of the rice genome revealed by paired-end mapping of high-throughput re-sequencing data. , 2011, The Plant journal : for cell and molecular biology.
[23] P. Beyer,et al. Golden Rice and 'Golden' crops for human nutrition. , 2010, New biotechnology.
[24] Jukon Kim,et al. Application of two bicistronic systems involving 2A and IRES sequences to the biosynthesis of carotenoids in rice endosperm. , 2010, Plant biotechnology journal.
[25] A. Aharoni,et al. The Arabidopsis DSO/ABCG11 transporter affects cutin metabolism in reproductive organs and suberin in roots. , 2010, Molecular plant.
[26] I. Hara-Nishimura,et al. Oil-body-membrane proteins and their physiological functions in plants. , 2010, Biological & pharmaceutical bulletin.
[27] Jürgen Breitenbach,et al. Combinatorial genetic transformation generates a library of metabolic phenotypes for the carotenoid pathway in maize , 2008, Proceedings of the National Academy of Sciences.
[28] Monica A. Schmidt,et al. Suppression of soybean oleosin produces micro-oil bodies that aggregate into oil body/ER complexes. , 2008, Molecular plant.
[29] Thomas D. Schmittgen,et al. Analyzing real-time PCR data by the comparative CT method , 2008, Nature Protocols.
[30] P. Beyer,et al. Metabolic Engineering of Potato Carotenoid Content through Tuber-Specific Overexpression of a Bacterial Mini-Pathway , 2007, PloS one.
[31] Rodrigo M. P. Siloto,et al. The Accumulation of Oleosins Determines the Size of Seed Oilbodies in Arabidopsis[W][OA] , 2006, The Plant Cell Online.
[32] E. Hinchliffe,et al. Improving the nutritional value of Golden Rice through increased pro-vitamin A content , 2005, Nature Biotechnology.
[33] M. Melzer,et al. Seed-specific promoters direct gene expression in non-seed tissue. , 2004, Journal of experimental botany.
[34] Kjell Stålberg,et al. Seed-Specific Overexpression of an Endogenous Arabidopsis Phytoene Synthase Gene Results in Delayed Germination and Increased Levels of Carotenoids, Chlorophyll, and Abscisic Acid1 , 2003, Plant Physiology.
[35] N. Misawa,et al. Elevation of the provitamin A content of transgenic tomato plants , 2000, Nature Biotechnology.
[36] P. Beyer,et al. Engineering the provitamin A (beta-carotene) biosynthetic pathway into (carotenoid-free) rice endosperm. , 2000, Science.
[37] P. Hedden,et al. Constitutive expression of a fruit phytoene synthase gene in transgenic tomatoes causes dwarfism by redirecting metabolites from the gibberellin pathway , 1995 .
[38] D. Inzé,et al. A novel seed protein gene from Vicia faba is developmentally regulated in transgenic tobacco and Arabidopsis plants , 1991, Molecular and General Genetics MGG.
[39] G. Sandmann. Genetic manipulation of carotenoid biosynthesis: strategies, problems and achievements. , 2001, Trends in plant science.