Nguyen Van Ngoc Tuyet, Moon Sunok, Jung Ki-Hong
Department of Plant Molecular Systems Biotechnology & Graduate School of Biotechnology, Kyung Hee University, Yongin 446-701, Republic of Korea.
J Plant Physiol. 2014 Sep 1;171(14):1276-88. doi: 10.1016/j.jplph.2014.05.006. Epub 2014 Jun 10.
Although the super family of ATP-binding cassette (ABC) proteins plays key roles in the physiology and development of plants, the functions of members of this interesting family mostly remain to be clarified, especially in crop plants. Thus, systematic analysis of this family in rice (Oryza sativa), a major model crop plant, will be helpful in the design of effective strategies for functional analysis. Phylogenomic analysis that integrates anatomy and stress meta-profiling data based on a large collection of rice Affymetrix array data into the phylogenic context provides useful clues into the functions for each of the ABC transporter family members in rice. Using anatomy data, we identified 17 root-preferred and 16-shoot preferred genes at the vegetative stage, and 3 pollen, 2 embryo, 2 ovary, 2 endosperm, and 1 anther-preferred gene at the reproductive stage. The stress data revealed significant up-regulation or down-regulation of 47 genes under heavy metal treatment, 16 genes under nutrient deficient conditions, and 51 genes under abiotic stress conditions. Of these, we confirmed the differential expression patterns of 14 genes in root samples exposed to drought stress using quantitative real-time PCR. Network analysis using RiceNet suggests a functional gene network involving nine rice ABC transporters that are differentially regulated by drought stress in root, further enhancing the prediction of biological function. Our analysis provides a molecular basis for the study of diverse biological phenomena mediated by the ABC family in rice and will contribute to the enhancement of crop yield and stress tolerance.
尽管ATP结合盒(ABC)蛋白超家族在植物的生理和发育过程中发挥着关键作用,但这个有趣家族成员的功能大多仍有待阐明,尤其是在农作物中。因此,对主要模式作物水稻(Oryza sativa)中的这个家族进行系统分析,将有助于设计有效的功能分析策略。基于大量水稻Affymetrix芯片数据,将解剖学和胁迫元分析数据整合到系统发育背景中的系统基因组分析,为水稻中每个ABC转运蛋白家族成员的功能提供了有用线索。利用解剖学数据,我们在营养生长阶段鉴定出17个根偏好性基因和16个地上部偏好性基因,在生殖阶段鉴定出3个花粉偏好性基因、2个胚偏好性基因、2个子房偏好性基因、2个胚乳偏好性基因和1个花药偏好性基因。胁迫数据显示,在重金属处理下有47个基因显著上调或下调,在营养缺乏条件下有16个基因显著上调或下调,在非生物胁迫条件下有51个基因显著上调或下调。其中,我们使用定量实时PCR证实了14个基因在干旱胁迫下根样本中的差异表达模式。使用RiceNet进行的网络分析表明,一个功能基因网络涉及9个水稻ABC转运蛋白,它们在根中受干旱胁迫的差异调节,进一步增强了对生物学功能的预测。我们的分析为研究水稻中ABC家族介导的多种生物学现象提供了分子基础,并将有助于提高作物产量和胁迫耐受性。