Overexpression of the Transcription Factor GROWTH-REGULATING FACTOR5 Improves Transformation of Dicot and Monocot Species

被引:112
|
作者
Kong, Jixiang [1 ]
Martin-Ortigosa, Susana [1 ]
Finer, John [2 ]
Orchard, Nuananong [2 ]
Gunadi, Andika [2 ]
Batts, Lou Ann [3 ]
Thakare, Dhiraj [4 ]
Rush, Bradford [3 ]
Schmitz, Oliver [5 ]
Stuiver, Maarten [6 ]
Olhoft, Paula [3 ]
Pacheco-Villalobos, David [1 ]
机构
[1] KWS SAAT SE & Co KGaA, Res & Dev, Plant Cell & Transformat Technol, Einbeck, Germany
[2] Ohio State Univ, Dept Hort & Crop Sci, Coll Food Agr & Environm Sci, OSU Plant Transformat Lab, Columbus, OH 43210 USA
[3] BASF Corp, Res Triangle Pk, NC USA
[4] Roche Tissue Diagnost, Tucson, AZ USA
[5] BASF Metabolome Solut GmbH, Berlin, Germany
[6] BASF Belgium Coordinat Ctr, Business Belux Branch, Ghent, Belgium
来源
关键词
transformation; GROWTH-REGULATING FACTOR; regeneration; organogenesis; embryogenesis; monocot; dicot; crop; BETA-VULGARIS L; AGROBACTERIUM-MEDIATED TRANSFORMATION; GROWTH-REGULATING FACTOR; BABY-BOOM; LEAF SIZE; SOMATIC EMBRYOGENESIS; CELL-PROLIFERATION; PLANT-REGENERATION; MICRORNA MIR396; ARABIDOPSIS;
D O I
10.3389/fpls.2020.572319
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Successful regeneration of genetically modified plants from cell culture is highly dependent on the species, genotype, and tissue-type being targeted for transformation. Studies in some plant species have shown that when expression is altered, some genes regulating developmental processes are capable of triggering plant regeneration in a variety of plant cells and tissue-types previously identified as being recalcitrant to regeneration. In the present research, we report that developmental genes encoding GROWTH-REGULATING FACTORS positively enhance regeneration and transformation in both monocot and dicot species. In sugar beet (Beta vulgaris ssp. vulgaris), ectopic expression of Arabidopsis GRF5 (AtGRF5) in callus cells accelerates shoot formation and dramatically increases transformation efficiency. More importantly, overexpression of AtGRF5 enables the production of stable transformants in recalcitrant sugar beet varieties. The introduction of AtGRF5 and GRF5 orthologs into canola (Brassica napus L.), soybean (Glycine max L.), and sunflower (Helianthus annuus L.) results in significant increases in genetic transformation of the explant tissue. A positive effect on proliferation of transgenic callus cells in canola was observed upon overexpression of GRF5 genes and AtGRF6 and AtGRF9. In soybean and sunflower, the overexpression of GRF5 genes seems to increase the proliferation of transformed cells, promoting transgenic shoot formation. In addition, the transformation of two putative AtGRF5 orthologs in maize (Zea mays L.) significantly boosts transformation efficiency and resulted in fully fertile transgenic plants. Overall, the results suggest that overexpression of GRF genes render cells and tissues more competent to regeneration across a wide variety of crop species and regeneration processes. This sets GRFs apart from other developmental regulators and, therefore, they can potentially be applied to improve transformation of monocot and dicot plant species.
引用
收藏
页数:15
相关论文
共 50 条
  • [1] GRF5, a Novel Regeneration Booster Gene that Improves Transformation of Monocot and Dicot Species.
    Pacheco-Villalobos, David
    Martin-Ortigosa, Susana
    Kong, Jixiang
    Koch, Wolfgang
    Schmidt, Klaus
    IN VITRO CELLULAR & DEVELOPMENTAL BIOLOGY-ANIMAL, 2019, 55 : S36 - S37
  • [2] GROWTH REGULATING FACTOR5 Stimulates Arabidopsis Chloroplast Division, Photosynthesis, and Leaf Longevity
    Vercruyssen, Liesbeth
    Tognetti, Vanesa B.
    Gonzalez, Nathalie
    Van Dingenen, Judith
    De Milde, Liesbeth
    Bielach, Agnieszka
    De Rycke, Riet
    Van Breusegem, Frank
    Inze, Dirk
    PLANT PHYSIOLOGY, 2015, 167 (03) : 817 - +
  • [3] Genome-wide identification of growth-regulating factor transcription factor family related to leaf and stem development in alfalfa
    Sun, Yue
    Li, He
    Wu, Jiajing
    Zhang, Kangning
    Tang, Wei
    Cong, Lili
    Xie, Hongli
    Wang, Zeng-Yu
    Chai, Maofeng
    FRONTIERS IN PLANT SCIENCE, 2022, 13
  • [4] Growth-Regulating Factors (GRFs): A Small Transcription Factor Family with Important Functions in Plant Biology
    Omidbakhshfard, Mohammad Amin
    Proost, Sebastian
    Fujikura, Ushio
    Mueller-Roeber, Bernd
    MOLECULAR PLANT, 2015, 8 (07) : 998 - 1010
  • [5] The DNA binding of plant-specific GROWTH-REGULATING FACTOR transcription factors is stabilized by GRF-INTERACTING FACTOR coactivators
    Nosaki, Shohei
    Ohtsuka, Masae
    BIOSCIENCE BIOTECHNOLOGY AND BIOCHEMISTRY, 2025,
  • [6] Regulation of plant growth and development by the GROWTH-REGULATING FACTOR and GRF-INTERACTING FACTOR duo
    Kim, Jeong Hoe
    Tsukaya, Hirokazu
    JOURNAL OF EXPERIMENTAL BOTANY, 2015, 66 (20) : 6093 - 6107
  • [7] Salinity as a Growth-Regulating Factor of the Toxic Dinoflagellate Alexandrium Minutum
    Abdennadher, Moufida
    Zouari, Amel Bellaaj
    Sahnoun, Wafa Feki
    Hamza, Asma
    RECENT ADVANCES IN ENVIRONMENTAL SCIENCE FROM THE EURO-MEDITERRANEAN AND SURROUNDING REGIONS, VOLS I AND II, 2018, : 1645 - 1647
  • [8] Overexpression of transcription factor ZmPTF1 improves low phosphate tolerance of maize by regulating carbon metabolism and root growth
    Li, Zhaoxia
    Gao, Qiang
    Liu, Yazheng
    He, Chunmei
    Zhang, Xinrui
    Zhang, Juren
    PLANTA, 2011, 233 (06) : 1129 - 1143
  • [9] Overexpression of transcription factor ZmPTF1 improves low phosphate tolerance of maize by regulating carbon metabolism and root growth
    Zhaoxia Li
    Qiang Gao
    Yazheng Liu
    Chunmei He
    Xinrui Zhang
    Juren Zhang
    Planta, 2011, 233 : 1129 - 1143
  • [10] GROWTH-REGULATING FACTOR and GRF-INTERACTING FACTOR Specify Meristematic Cells of Gynoecia and Anthers
    Lee, Sang-Joo
    Lee, Byung Ha
    Jung, Jae-Hak
    Park, Soon Ki
    Song, Jong Tae
    Kim, Jeong Hoe
    PLANT PHYSIOLOGY, 2018, 176 (01) : 717 - 729