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转录组学与代谢组学携手合作时:一个表征植物CDF转录因子的案例研究

When Transcriptomics and Metabolomics Work Hand in Hand: A Case Study Characterizing Plant CDF Transcription Factors.

作者信息

Pérez-Alonso Marta-Marina, Carrasco-Loba Víctor, Medina Joaquín, Vicente-Carbajosa Jesús, Pollmann Stephan

机构信息

Centro de Biotecnología y Genómica de Plantas, Universidad Politécnica de Madrid (UPM)-Instituto Nacional de Investigación y Tecnología Agraria y Alimentaria (INIA), 28223 Pozuelo de Alarcón (Madrid), Spain.

Escuela Técnica Superior de Ingeniería Agronómica, Alimentaria y de Biosistemas, Universidad Politécnica de Madrid, 28040 Madrid, Spain.

出版信息

High Throughput. 2018 Feb 28;7(1):7. doi: 10.3390/ht7010007.

Abstract

Over the last three decades, novel "omics" platform technologies for the sequencing of DNA and complementary DNA (cDNA) (RNA-Seq), as well as for the analysis of proteins and metabolites by mass spectrometry, have become more and more available and increasingly found their way into general laboratory life. With this, the ability to generate highly multivariate datasets on the biological systems of choice has increased tremendously. However, the processing and, perhaps even more importantly, the integration of "omics" datasets still remains a bottleneck, although considerable computational and algorithmic advances have been made in recent years. In this mini-review, we use a number of recent "multi-omics" approaches realized in our laboratories as a common theme to discuss possible pitfalls of applying "omics" approaches and to highlight some useful tools for data integration and visualization in the form of an exemplified case study. In the selected example, we used a combination of transcriptomics and metabolomics alongside phenotypic analyses to functionally characterize a small number of Cycling Dof Transcription Factors (CDFs). It has to be remarked that, even though this approach is broadly used, the given workflow is only one of plenty possible ways to characterize target proteins.

摘要

在过去三十年中,用于DNA和互补DNA(cDNA)测序的新型“组学”平台技术(RNA测序)以及通过质谱分析蛋白质和代谢物的技术越来越普及,并越来越多地融入到常规实验室工作中。由此,生成有关所选生物系统的高度多变量数据集的能力得到了极大提高。然而,尽管近年来在计算和算法方面取得了显著进展,但“组学”数据集的处理,甚至可能更重要的是整合,仍然是一个瓶颈。在这篇小型综述中,我们以我们实验室中实现的一些最新“多组学”方法为共同主题,讨论应用“组学”方法可能存在的陷阱,并以一个示例案例研究的形式突出一些用于数据整合和可视化的有用工具。在所选示例中,我们结合转录组学和代谢组学以及表型分析,对少数循环Dof转录因子(CDF)进行功能表征。必须指出的是,尽管这种方法被广泛使用,但给定的工作流程只是表征目标蛋白质的众多可能方法之一。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bd0f/5876533/11c351431139/high-throughput-07-00007-g001.jpg

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