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Poinsettia protoplasts - a simple, robust and efficient system for transient gene expression studies

机译:一品红原生质体-用于瞬时基因表达研究的简单,强大和有效的系统

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Background Transient gene expression systems are indispensable tools in molecular biology. Yet, their routine application is limited to few plant species often requiring substantial equipment and facilities. High chloroplast and chlorophyll content may further impede downstream applications of transformed cells from green plant tissue. Results Here, we describe a fast and simple technique for the high-yield isolation and efficient transformation (>70%) of mesophyll-derived protoplasts from red leaves of the perennial plant Poinsettia (Euphorbia pulccherrima). In this method no particular growth facilities or expensive equipments are needed. Poinsettia protoplasts display an astonishing robustness and can be employed in a variety of commonly-used downstream applications, such as subcellular localisation (multi-colour fluorescence) or promoter activity studies. Due to low abundance of chloroplasts or chromoplasts, problems encountered in other mesophyll-derived protoplast systems (particularly autofluorescence) are alleviated. Furthermore, the transgene expression is detectable within 90 minutes of transformation and lasts for several days. Conclusions The simplicity of the isolation and transformation procedure renders Poinsettia protoplasts an attractive system for transient gene expression experiments, including multi-colour fluorescence, subcellular localisation and promoter activity studies. In addition, they offer hitherto unknown possibilities for anthocyan research and industrial applications.
机译:背景技术瞬时基因表达系统是分子生物学中必不可少的工具。但是,它们的常规应用仅限于少数需要大量设备和设施的植物。叶绿体和叶绿素含量高可能进一步阻碍绿色植物组织转化细胞的下游应用。结果在这里,我们描述了一种快速简单的技术,用于多年生植物一品红(Euphorbia pulccherrima)红叶中叶肉来源的原生质体的高产分离和有效转化(> 70%)。在这种方法中,不需要特定的生长设施或昂贵的设备。一品红原生质体显示出惊人的坚固性,可用于多种常用的下游应用,例如亚细胞定位(多色荧光)或启动子活性研究。由于叶绿体或色质体的丰度低,可以缓解其他叶肉来源的原生质体系统(尤其是自发荧光)中遇到的问题。此外,转基因表达可在转化后90分钟内检测到,并持续数天。结论分离和转化过程的简单性使一品红原生质体成为了一个有吸引力的系统,可用于瞬时基因表达实验,包括多色荧光,亚细胞定位和启动子活性研究。此外,它们为花色研究和工业应用提供了前所未有的可能性。

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