首页> 外文期刊>Plant Biotechnology Journal >Developing xylem‐preferential expression of PdGA20ox1, a gibberellin 20‐oxidase 1 from Pinus densiflora, improves woody biomass production in a hybrid poplar
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Developing xylem‐preferential expression of PdGA20ox1, a gibberellin 20‐oxidase 1 from Pinus densiflora, improves woody biomass production in a hybrid poplar

机译:开发PDGA20Ox1的木质优先表达,来自Pinus densiflora的嗜酸剂素20-氧化酶1,改善了杂交杨树中的木质生物质生产

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Summary Woody biomass has gained popularity as an environmentally friendly, renewable and sustainable resource for liquid fuel production. Here, we demonstrate biotechnological improvement of the quantity and quality of woody biomass by employing developing xylem (DX)-preferential production of gibberellin (GA), a phytohormone that positively regulates stem growth. First, for the proof of concept experiment, we produced transgenic Arabidopsis plants expressing GA20-oxidase, a key enzyme in the production of bioactive GAs, from Pinus densiflora ( PdGA20ox1 ) under the control of either a constitutive 35S promoter, designated 35S::PdGA20ox1, or a DX-specific promoter (originated from poplar), designated DX15::PdGA20ox1. As we hypothesized, both transgenic Arabidopsis plants ( 35S::PdGA20ox1 and DX15::PdGA20ox1 ) exhibited an accelerated stem growth that resulted in a large increase of biomass, up to 300% compared to wild-type control plants, together with increased secondary wall thickening and elongation of fibre cells. Next, we applied our concept to the production of transgenic poplar trees. Both transgenic poplar trees ( 35S::PdGA20ox1 and DX15::PdGA20ox1 ) showed dramatic increases in biomass, up to 300%, with accelerated stem growth and xylem differentiation. Cell wall monosaccharide composition analysis revealed that in both Arabidopsis and poplar, glucose and xylose contents were significantly increased. However, undesirable phenotypes of 35S::PdGA20ox1 poplar, including poor root growth and leaf development, were found. Interestingly, DX15::PdGA20ox1 poplar resulted in a reduction of undesirable phenotypes. Our results indicate that the controlled production of GAs through a tissue-specific promoter can be utilized as an efficient biotechnological tool for producing enhanced plant biomass, minimizing unwanted effects.
机译:总结伍迪生物量作为环保,可再生和可持续的液体燃料生产资源。在这里,我们通过采用开发木质素(DX) - 嗜酸盐蛋白(GA)的植物植物(GA),一种积极调节茎生长的植物激素,展示了木质生物量的数量和质量的生物技术改善。首先,对于概念实验证明,我们在组分35s启动子的控制下产生了表达Ga20-氧化酶的转基因拟南芥植物,在Consifalla(PDGA20Ox1)下,指定为35s :: pdga20ox1或者特异性促进剂(起源于杨树),指定DX15 :: PDGA20Ox1。当我们假设时,转基因拟南芥植物(35S :: PDGA20Ox1和DX15 :: PDGA20Ox1)表现出加速的茎生长,导致生物质的大幅增加,与野生型对照植物相比,高达300%,以及增加的次壁纤维细胞的增厚和伸长率。接下来,我们将我们的概念应用于转基因杨树的生产。转基因杨树(35s :: pdga20ox1和Dx15 :: pdga20ox1)显示出生物质的显着增加,高达300%,具有加速的茎生长和木质分化。细胞壁单糖组成分析显示,在拟南芥和杨树中,葡萄糖和木糖含量显着增加。然而,发现了35s :: PDGA20Ox1杨树的不良表型,包括较差的根系生长和叶片发育。有趣的是,DX15 :: PDGA20Ox1杨树导致减少不期望的表型。我们的结果表明,通过组织特异性启动子对气体的受控生产可作为生产增强的植物生物质的有效生物技术工具,最大限度地减少不必要的效果。

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