Marko D, Briglia N, Summerer S, Petrozza A, Cellini F, Iannacone R
ALSIA-Metapontum Agrobios Research Center, S.S. Jonica 106, Km 448,2, Metaponto (MT), Italy.
UNIBAS-Dipartimento delle Culture Europee e del Mediterraneo: Architettura, Ambiente, Patrimoni Culturali, Via S. Rocco, 3, 75100, Matera, Italy.
Methods Mol Biol. 2018;1694:373-388. doi: 10.1007/978-1-4939-7398-9_31.
High-throughput phenotyping has opened whole new perspectives for crop improvement and better understanding of quantitative traits in plants. Generation of loss-of-function and gain-of-function plant mutants requires processing and imaging a large number of plants in order to determine unknown gene functions and phenotypic changes generated by genetic modifications or selection of new traits. The use of phenomics for the evaluation of transgenic lines contributed significantly to the identification of plants more tolerant to biotic/abiotic stresses and furthermore, helped in the identification of unknown gene functions. In this chapter we describe the High-throughput phenotyping (HTP) platform working in our facility, drawing the general protocol and showing some examples of data obtainable from the platform. Tomato transgenic plants over-expressing the arginine decarboxylase 2 gene, which is involved in the polyamine biosynthetic pathway, were analyzed through our HTP facility for their tolerance to abiotic stress and significant differences in water content and ability to recover after drought stress where highlighted. This demonstrates the applicability of this methodology to the plant polyamine field.
高通量表型分析为作物改良以及更好地理解植物数量性状开辟了全新的视角。生成功能丧失和功能获得型植物突变体需要对大量植株进行处理和成像,以便确定未知基因功能以及由基因修饰或新性状选择所产生的表型变化。利用表型组学评估转基因株系对鉴定更耐受生物/非生物胁迫的植株有显著贡献,此外,还有助于鉴定未知基因功能。在本章中,我们描述了我们实验室运行的高通量表型分析(HTP)平台,绘制了一般方案,并展示了可从该平台获得的一些数据示例。通过我们的HTP设施分析了过表达参与多胺生物合成途径的精氨酸脱羧酶2基因的番茄转基因植株对非生物胁迫的耐受性,并突出显示了其在干旱胁迫后的含水量和恢复能力方面的显著差异。这证明了该方法在植物多胺领域的适用性。