Cai Changyang, Wang Wenjia, Ye Shanwen, Zhang Zhiliang, Ding Wensha, Xiang Mengqi, Wu Chu, Zhu Qiang
Basic Forestry and Proteomics Center (BFPC), Fujian Provincial Key Laboratory of Haixia Applied Plant Systems Biology, Haixia Institute of Science and Technology, College of Forestry, Fujian Agriculture and Forestry University, Fujian, China.
Front Plant Sci. 2020 Nov 12;11:560985. doi: 10.3389/fpls.2020.560985. eCollection 2020.
With the development of sequencing technology, the availability of genome data is rapidly increasing, while functional annotation of genes largely lags behind. In Arabidopsis, the functions of nearly half of the proteins are unknown and this remains one of the main challenges in current biological research. In an attempt to identify novel and rapid abiotic stress responsive genes, a number of salt-up () regulated genes were isolated by analyzing the public transcriptomic data, and one of them, , was characterized in this study. The expression of transcripts was rapidly up-regulated by various abiotic stress factors (<15 min), and SUPA protein is mainly localized in the peroxisome. Overexpression of in Arabidopsis leads to the elevated accumulation of reactive oxygen species (ROS), strong morphological changes and alternations in abiotic stress tolerance. The transcriptome analysis showed changes in expression of genes involved in stress response and plant development. Interestingly, ectopic overexpression of in poplar leads to a dwarf phenotype with severely curved leaves and changes in the plant tolerance of abiotic stresses. Our study reinforces the potential roles of in normal plant growth and the abiotic stress response.
随着测序技术的发展,基因组数据的可得性迅速增加,而基因的功能注释却在很大程度上滞后。在拟南芥中,近一半蛋白质的功能未知,这仍然是当前生物学研究的主要挑战之一。为了鉴定新的快速响应非生物胁迫的基因,通过分析公共转录组数据分离出了一些盐诱导上调的基因,本研究对其中一个基因进行了表征。该基因的转录本表达受到各种非生物胁迫因子的快速上调(<15分钟),且SUPA蛋白主要定位于过氧化物酶体。在拟南芥中过表达该基因会导致活性氧(ROS)积累增加、强烈的形态变化以及非生物胁迫耐受性的改变。转录组分析显示了参与胁迫响应和植物发育的基因表达变化。有趣的是,在杨树中异位过表达该基因会导致矮化表型,叶片严重卷曲,并且植物对非生物胁迫的耐受性发生变化。我们的研究强化了该基因在正常植物生长和非生物胁迫响应中的潜在作用。