College of Horticulture, Northwest A & F University, Yangling, Shaanxi, 712100, China.
College of Horticulture, Northwest A & F University, Yangling, Shaanxi, 712100, China.
Plant Physiol Biochem. 2018 Feb;123:81-93. doi: 10.1016/j.plaphy.2017.12.001. Epub 2017 Dec 5.
Carotenoid cleavage oxygenases (CCOs) are able to cleave carotenoids to produce apocarotenoids and their derivatives, which are important for plant growth and development. In this study, 21 apple CCO genes were identified and divided into six groups based on their phylogenetic relationships. We further characterized the apple CCO genes in terms of chromosomal distribution, structure and the presence of cis-elements in the promoter. We also predicted the cellular localization of the encoded proteins. An analysis of the synteny within the apple genome revealed that tandem, segmental, and whole-genome duplication events likely contributed to the expansion of the apple carotenoid oxygenase gene family. An additional integrated synteny analysis identified orthologous carotenoid oxygenase genes between apple and Arabidopsis thaliana, which served as references for the functional analysis of the apple CCO genes. The net photosynthetic rate, transpiration rate, and stomatal conductance of leaves decreased, while leaf stomatal density increased under drought and saline conditions. Tissue-specific gene expression analyses revealed diverse spatiotemporal expression patterns. Finally, hormone and abiotic stress treatments indicated that many apple CCO genes are responsive to various phytohormones as well as drought and salinity stresses. The genome-wide identification of apple CCO genes and the analyses of their expression patterns described herein may provide a solid foundation for future studies examining the regulation and functions of this gene family.
类胡萝卜素双加氧酶(CCOs)能够切割类胡萝卜素产生开环类胡萝卜素及其衍生物,这对于植物的生长和发育很重要。在本研究中,鉴定了 21 个苹果 CCO 基因,并根据系统发育关系将其分为六组。我们进一步从染色体分布、结构和启动子中顺式作用元件的存在等方面对苹果 CCO 基因进行了特征分析。我们还预测了编码蛋白的细胞定位。苹果基因组内的同线性分析表明,串联、片段和全基因组复制事件可能导致了苹果类胡萝卜素加氧酶基因家族的扩张。进一步的整合同线性分析鉴定了苹果和拟南芥之间的同源类胡萝卜素加氧酶基因,为苹果 CCO 基因的功能分析提供了参考。干旱和盐胁迫下叶片的净光合速率、蒸腾速率和气孔导度降低,而气孔密度增加。组织特异性基因表达分析显示出不同的时空表达模式。最后,激素和非生物胁迫处理表明,许多苹果 CCO 基因对各种植物激素以及干旱和盐胁迫有响应。本文对苹果 CCO 基因的全基因组鉴定和表达模式分析,为研究该基因家族的调控和功能提供了坚实的基础。