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Preparation of leaf mesophyll protoplasts for transient gene expression in Brachypodium distachyon

机译:叶肉短叶原生质体瞬时基因表达的制备

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Transient gene expression systems using protoplasts have been widely used for rapid functional characterization of genes in many plant species. Brachypodium distachyon has recently been employed as a model plant for studies on biofuel grass species and grass crops because of its small genome size, short life-span, and availability of efficient transformation systems. Here, we report the an efficient protocol for the preparation of leaf mesophyll protoplasts from Brachypodium seedlings. We also modified the polyethylene glycol (PEG)-mediated transformation procedure to optimize experimental conditions, such as duration of enzyme digestion, PEG incubation time, and plasmid DNA concentration and size. The green fluorescence protein (GFP)- and β-glucuronidase (GUS)-coding genes were used as reporters to evaluate the feasibility of this transient expression system. We found that the yield of viable protoplasts was highest after 3 h of enzymatic digestion. Viability of enzyme-digested protoplasts was moderately maintained up to 24 h in Mmg preincubation solution. In addition, the highest transient expression of reporter genes was obtained when protoplasts were transformed with 20 μg of plasmid DNA and incubated for 16 h. Together with the recent completion of the Brachypodium genome sequence, the Brachypodium transient expression system using leaf mesophyll protoplasts can be widely used for cellular, molecular, and biochemical studies of genes involved in carbon metabolism and signaling pathways mediating intrinsic and environmental cues.
机译:使用原生质体的瞬时基因表达系统已被广泛用于许多植物物种中基因的快速功能表征。由于其基因组尺寸小,寿命短和有效的转化系统的可用性,近距离芽孢杆菌已被用作研究生物燃料草种和草类作物的模型植物。在这里,我们报告了一种从短壶菌幼苗制备叶肉叶原生质体的有效方案。我们还修改了聚乙二醇(PEG)介导的转化程序,以优化实验条件,例如酶消化的持续时间,PEG的孵育时间以及质粒DNA的浓度和大小。绿色荧光蛋白(GFP)和β-葡萄糖醛酸苷酶(GUS)编码基因被用作报告基因,以评估该瞬时表达系统的可行性。我们发现,酶消化3小时后,原生质体的产量最高。在Mmg预温育溶液中,酶消化的原生质体的活力可适当维持长达24小时。此外,当原生质体用20μg质粒DNA转化并孵育16小时时,报告基因的瞬时表达最高。连同最近形成的腕足动物基因组序列,使用叶肉叶原生质体的腕足动物瞬时表达系统可广泛用于细胞,分子和生化研究涉及碳代谢和介导内在和环境线索的信号通路的基因。

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