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首页> 外文期刊>Current Pharmaceutical Biotechnology >Generation of Transgenic Energy Cane Plants with Integration of Minimal Transgene Expression Cassette
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Generation of Transgenic Energy Cane Plants with Integration of Minimal Transgene Expression Cassette

机译:整合最小转基因表达盒的转基因甘蔗植物的产生

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摘要

Lignocellulosic biomass has the potential to serve as feedstock and direct replacement for petrochemicals in the fuel, chemical, pharmaceutical and material industries. Energy cane has been identified by the U.S. Department of Energy (DOE) as prime lignocellulosic feedstock as it produces record biomass yields and is able to grow on low-value land with reduced inputs. Molecular improvement of energy cane is an essential step toward the development of a high-value crop and may contribute to improved biomass conversion to value added products. Such improvements require a development of an efficient regeneration and transformation system for the vegetatively propagated energy cane varieties. In this report, an efficient biolistic gene delivery protocol for energy canes (genotype L 79-1002 and Ho 00-961) has been established with immature leaf rolls as explants. Embryonic calli, developed approximately 6 weeks after culture initiation and was used as target for biolistic transfer of a minimum expression cassette of P-ubi::nptII::35S polyA derived from plasmid pJFNPTII. Putative transgenic clones of callus were obtained after selection on callus induction medium supplemented with 30 mg l~(-1) geneticin. Regeneration was carried out on NB medium, which is modified from MS supplemented with 1.86 mg l~(-1) naphthaleneacetic acid (NAA) and 0.1 mg l~(-1), 6-benzylaminopurine (BAP) and 20mg l~(-1) paromomycin. Shoots growing on selection media were transferred to hormone free medium with 20 mg l~(-1) paromomycin. Putative transgenic lines were first analyzed by PCR. Transgene integration was confirmed by Southern blot analysis. ELISA (Enzyme-Linked Immunosorbent Assay) and Immunochromathography assays confirmed transgene expression.
机译:木质纤维素生物质具有用作燃料,化学,制药和材料工业中的石油化工产品的原料和直接替代物的潜力。能源藤被美国能源部(DOE)确定为主要的木质纤维素原料,因为它产生了创纪录的生物量产量,并能够在投入减少的低价值土地上生长。甘蔗的分子改良是高价值农作物发展的必不可少的一步,可能有助于提高生物量转化为增值产品的能力。这样的改进需要开发用于营养繁殖的能量甘蔗品种的有效的再生和转化系统。在此报告中,已经建立了以未成熟的叶卷为外植体的高效的手杖(基因型L 79-1002和Ho 00-961)的生物射弹基因递送方案。胚胎愈伤组织在培养开始约6周后发育,并用作从质粒pJFNPTII衍生的P-ubi :: nptII :: 35S polyA最小表达盒的生物弹移靶。在补充了30 mg l〜(-1)遗传霉素的愈伤组织诱导培养基上进行选择后,获得推定的愈伤组织转基因克隆。在NB培养基上进行再生,该培养基由添加了1.86 mg l〜(-1)萘乙酸(NAA)和0.1 mg l〜(-1),6-苄氨基嘌呤(BAP)和20mg l〜(- 1)巴龙霉素。将在选择培养基上生长的新芽转移到含有20 mg l〜(-1)巴龙霉素的无激素培养基上。首先通过PCR分析推定的转基因品系。通过Southern印迹分析确认了转基因整合。 ELISA(酶联免疫吸附测定)和免疫色谱测定法证实了转基因表达。

著录项

  • 来源
    《Current Pharmaceutical Biotechnology 》 |2015年第5期| 407-413| 共7页
  • 作者单位

    Agronomy Department, Plant Molecular and Cellular Biology Program, Genetics Institute, University of Florida, Gainesville, FL. USA,Department of Biology, School of Sciences and Engineering, The American University in Cairo, New Cairo, Egypt;

    Agronomy Department, Plant Molecular and Cellular Biology Program, Genetics Institute, University of Florida, Gainesville, FL. USA;

    Agronomy Department, Plant Molecular and Cellular Biology Program, Genetics Institute, University of Florida, Gainesville, FL. USA;

    Agronomy Department, Plant Molecular and Cellular Biology Program, Genetics Institute, University of Florida, Gainesville, FL. USA;

    Agronomy Department, Plant Molecular and Cellular Biology Program, Genetics Institute, University of Florida, Gainesville, FL. USA,Department of Plant Breeding and Genetics, Punjab Agricultural University, Ludhiana, India;

    Agronomy Department, Plant Molecular and Cellular Biology Program, Genetics Institute, University of Florida, Gainesville, FL. USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Bioenergy; energy cane; lignocellulosic biomass; genetic transformation; particle bombardment; nptII; minimal expression cassette;

    机译:生物能源能量棒木质纤维素生物质;基因转化;粒子轰击nptII;最小表达盒;

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