Works matching Transgenic plants
Results: 5000
Manipulation of sink-source relations in transgenic plants.
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- Plant, Cell & Environment, 1994, v. 17, n. 5, p. 649, doi. 10.1111/j.1365-3040.1994.tb00156.x
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Effective production of marker-free transgenic strawberry plants using inducible site-specific recombination and a bifunctional selectable marker gene.
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- Plant Biotechnology Journal, 2004, v. 2, n. 3, p. 233, doi. 10.1111/j.1467-7652.2004.00067.x
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The Experimental and Commercial Release of Transgenic Crop plants.
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- Plant Breeding, 1993, v. 111, n. 1, p. 1, doi. 10.1111/j.1439-0523.1993.tb00602.x
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Changes of phenolic compounds in LebZIP2-overexpressing transgenic plants.
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- Indian Journal of Biochemistry & Biophysics, 2019, v. 56, n. 6, p. 484
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Enhanced production of single copy backbone-free transgenic plants in multiple crop species using binary vectors with a pRi replication origin in Agrobacterium tumefaciens.
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- Transgenic Research, 2011, v. 20, n. 4, p. 773, doi. 10.1007/s11248-010-9458-6
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Simple Identification of Transgenic Arabidopsis Plants Carrying a Single Copy of the Integrated Gene.
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- Bioscience, Biotechnology & Biochemistry, 2006, v. 70, n. 7, p. 1780, doi. 10.1271/bbb.50687
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Morphological analysis of transgenic tobacco plants expressing the PnEXPA3 gene of black poplar ( Populus nigra).
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- Russian Journal of Developmental Biology, 2013, v. 44, n. 3, p. 129, doi. 10.1134/S106236041303003X
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Effect of ectopic expression of NtEXPA5 gene on cell size and growth of organs of transgenic tobacco plants.
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- Russian Journal of Developmental Biology, 2013, v. 44, n. 1, p. 28, doi. 10.1134/S1062360413010049
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Laboratory study of the effects of leek lectin (APA) in transgenic tobacco plants on the development of cotton leafworm (Lepidoptera: Spodoptera littoralis Noctuidae).
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- European Journal of Entomology, 2009, v. 106, n. 1, p. 21, doi. 10.14411/eje.2009.003
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Agrobacterium tumefaciens-mediated transgenic plant production via direct shoot bud organogenesis from pre-plasmolyzed leaf explants of Catharanthus roseus.
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- Biotechnology Letters, 2011, v. 33, n. 5, p. 1053, doi. 10.1007/s10529-010-0515-2
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Enhanced tolerance of transgenic tall fescue plants overexpressing 2-Cys peroxiredoxin against methyl viologen and heat stresses.
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- Biotechnology Letters, 2010, v. 32, n. 4, p. 571, doi. 10.1007/s10529-009-0185-0
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Paraquat resistance of transgenic tobacco plants over-expressing theOchrobactrum anthropipqrAgene.
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- Biotechnology Letters, 2004, v. 26, n. 18, p. 1391, doi. 10.1023/B:BILE.0000045638.82348.7a
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Heavy metal tolerance of transgenic tobacco plants over-expressing cysteine synthase.
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- Biotechnology Letters, 2004, v. 26, n. 2, p. 153, doi. 10.1023/B:BILE.0000012895.60773.ff
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Molecular Cloning of a cDNA for Chrysanthemum morifolium Ramat Squalene Synthase Gene and Impact of Its Silencing on Transgenic Chrysanthemum Plants.
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- Russian Journal of Plant Physiology, 2024, v. 71, n. 1, p. 1, doi. 10.1134/S1021443723603555
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Root Growth of Transgenic Tobacco Plants with Overexpression of Expansin and Xyloglucan endotransglycosylase Genes under Cadmium Stress.
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- Russian Journal of Plant Physiology, 2022, v. 69, n. 5, p. 1, doi. 10.1134/S102144372205003X
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Production of proinsulin in marker-free transgenic tobacco plants using CRE/loxP system.
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- Russian Journal of Plant Physiology, 2016, v. 63, n. 5, p. 673, doi. 10.1134/S1021443716050204
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Obtaining transgenic tobacco plants expressing conserved regions of the AINTEGUMENTA gene in antisense orientation.
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- Russian Journal of Plant Physiology, 2012, v. 59, n. 3, p. 307, doi. 10.1134/S1021443712030107
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Morphological and physiological characteristics of transgenic tobacco plants expressing expansin genes: AtEXP10 from Arabidopsis and PnEXPA1 from poplar.
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- Russian Journal of Plant Physiology, 2012, v. 59, n. 1, p. 97, doi. 10.1134/S1021443712010128
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Transgenic chrysanthemum plants expressing a harpin<sub>Xoo</sub> gene demonstrate induced resistance to alternaria leaf spot and accelerated development.
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- Russian Journal of Plant Physiology, 2010, v. 57, n. 4, p. 548, doi. 10.1134/S1021443710040138
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The improvement of resistance to bacterial speck in transgenic tomato plants by Agrobacterium tumefaciens mediated transformation.
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- Russian Journal of Plant Physiology, 2007, v. 54, n. 1, p. 89, doi. 10.1134/S102144370701013X
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Features of Expression of Foreign Genes in Complex Insertions in Transgenic Tobacco Plants with a Mosaic Pattern of nptII Gene Expression.
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- Russian Journal of Genetics, 2021, v. 57, n. 3, p. 319, doi. 10.1134/S1022795421030108
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Comparative Analysis of Transgenic Tobacco Plants with Different Heterologic Plant Defensive Genes.
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- Russian Journal of Genetics, 2020, v. 56, n. 3, p. 307, doi. 10.1134/S1022795420030084
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高通量测序技术在转基因植物分子特征评价中的应用.
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- Journal of Agricultural Science & Technology (1008-0864), 2020, v. 22, n. 5, p. 6, doi. 10.13304/j.nykjdb.2019.0824
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The use of mutants and transgenic plants to study amino acid metabolism.
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- Plant, Cell & Environment, 1994, v. 17, n. 5, p. 541, doi. 10.1111/j.1365-3040.1994.tb00148.x
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A wheat WRKY transcription factor TaWRKY17 enhances tolerance to salt stress in transgenic Arabidopsis and wheat plant.
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- Plant Molecular Biology, 2023, v. 113, n. 4/5, p. 171, doi. 10.1007/s11103-023-01381-1
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Spurious polyadenylation of Norovirus Narita 104 capsid protein mRNA in transgenic plants.
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- Plant Molecular Biology, 2011, v. 75, n. 3, p. 263, doi. 10.1007/s11103-010-9725-1
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The wheat pathogenesis-related protein (TdPR1.2) enhanced tolerance to abiotic and biotic stresses in transgenic Arabidopsis plants.
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- Protoplasma, 2024, v. 261, n. 5, p. 1035, doi. 10.1007/s00709-024-01955-w
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Functional characterization of secondary wall deposition regulating transcription factors MusaVND2 and MusaVND3 in transgenic banana plants.
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- Protoplasma, 2016, v. 253, n. 2, p. 431, doi. 10.1007/s00709-015-0822-5
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Agrobacterium tumefaciens-mediated transgenic plant and somaclone production through direct and indirect regeneration from leaves in Stevia rebaudiana with their glycoside profile.
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- Protoplasma, 2014, v. 251, n. 3, p. 661, doi. 10.1007/s00709-013-0568-x
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Utilization of genes encoding osmoprotectants in transgenic plants for enhanced abiotic stress tolerance.
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- Electronic Journal of Biotechnology, 2015, v. 18, n. 4, p. 257, doi. 10.1016/j.ejbt.2015.04.002
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Single-Step Purification and Characterization of A Recombinant Serine Proteinase Inhibitor from Transgenic Plants.
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- Applied Biochemistry & Biotechnology, 2016, v. 179, n. 2, p. 220, doi. 10.1007/s12010-016-1989-8
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Production of cyanophycin, a suitable source for the biodegradable polymer polyaspartate, in transgenic plants.
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- Plant Biotechnology Journal, 2005, v. 3, n. 2, p. 249, doi. 10.1111/j.1467-7652.2005.00122.x
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Enhanced photosynthesis and growth of transgenic plants that express ictB, a gene involved in HCO[sub 3][sup -] accumulation in cyanobacteria.
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- Plant Biotechnology Journal, 2003, v. 1, n. 1, p. 43, doi. 10.1046/j.1467-7652.2003.00003.x
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PHENOTYPIC PERFORMANCE OF TRANSGENIC POTATO (SOLANUM TUBEROSUM L.) PLANTS WITH PYRAMIDED RICE CYSTATIN GENES (OCI AND OCII).
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- Archives of Biological Sciences, 2015, v. 67, n. 3, p. 957, doi. 10.2298/ABS141201058C
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Genetic Analysis of the Peach SnRK1β3 Subunit and Its Function in Transgenic Tomato Plants.
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- Genes, 2024, v. 15, n. 12, p. 1574, doi. 10.3390/genes15121574
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Identification and Validation of Genetic Variations in Transgenic Chinese Cabbage Plants (Brassica rapa ssp. pekinensis) by Next-Generation Sequencing.
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- Genes, 2021, v. 12, n. 5, p. 621, doi. 10.3390/genes12050621
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Production of a monoclonal antibody by ascites, hollow fiber system, and transgenic plants for vaccine production using CB.Hep-1 mAb as a study case.
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- Biotechnology & Bioprocess Engineering, 2012, v. 17, n. 1, p. 145, doi. 10.1007/s12257-011-0196-2
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Current Status and Future Strategies for Development of Transgenic Plants in China.
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- Journal of Integrative Plant Biology, 2007, v. 49, n. 9, p. 1281, doi. 10.1111/j.1744-7909.2007.00536.x
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Selection of transgenic Petunia plants using the green fluorescent protein (GFP).
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- Plant Cell, Tissue & Organ Culture, 2011, v. 107, n. 3, p. 483, doi. 10.1007/s11240-011-9998-3
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Transgenic sweetpotato plants expressing an LOS5 gene are tolerant to salt stress.
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- Plant Cell, Tissue & Organ Culture, 2011, v. 107, n. 2, p. 205, doi. 10.1007/s11240-011-9971-1
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THE PRODUCTION OF TRANSGENIC TOBACCO PLANTS OVEREXPRESSING OAK DEHYDRIN GENE.
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- Journal of Microbiology, Biotechnology & Food Sciences, 2022, v. 12, p. 1, doi. 10.55251/jmbfs.9225
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Expression of a Neurospora crassa zinc transporter gene in transgenic Nicotiana tabacum enhances plant zinc accumulation without co-transport of cadmium.
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- Plant, Cell & Environment, 2010, v. 33, n. 10, p. 1697, doi. 10.1111/j.1365-3040.2010.02174.x
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Transgenic Brassica napus plants overexpressing aluminium-induced mitochondrial manganese superoxide dismutase cDNA are resistant to aluminium.
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- Plant, Cell & Environment, 2001, v. 24, n. 12, p. 1278, doi. 10.1046/j.0016-8025.2001.00783.x
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Overproduction of SAT and/or OASTL in transgenic plants: a survey of effects.
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- Journal of Experimental Botany, 2004, v. 55, n. 404, p. 1881, doi. 10.1093/jxb/erh151
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Combined expression of S‐VSPα in two different organelles enhances its accumulation and total lysine production in leaves of transgenic tobacco plants.
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- Journal of Experimental Botany, 2002, v. 53, n. 376, p. 1867, doi. 10.1093/jxb/erf046
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Perspectives in Experimental Botany. Overexpression of C4‐cycle enzymes in transgenic C3 plants: a biotechnological approach to improve C3‐photosynthesis.
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- Journal of Experimental Botany, 2002, v. 53, n. 369, p. 591, doi. 10.1093/jexbot/53.369.591
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Determination of heavy metal uptake in transgenic plants harbouring the rabbit CYP450 2E1 using X-ray fluorescence analysis.
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- International Journal of Environmental Studies, 2014, v. 71, n. 3, p. 292, doi. 10.1080/00207233.2014.909681
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A one-time inducible transposon for terminating selectable markers in transgenic plants.
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- Botanical Studies, 2011, v. 52, n. 4, p. 375
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Construction of the binary vector with bi-selectable markers for generating marker-free transgenic plants.
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- Botanical Studies, 2011, v. 52, n. 3, p. 239
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Unique WSPA protein from terrestrial macroscopic cyanobacteria can confer resistance to osmotic stress in transgenic plants.
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- World Journal of Microbiology & Biotechnology, 2014, v. 30, n. 9, p. 2361, doi. 10.1007/s11274-014-1661-9
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