AtHAP3b plays a crucial role in the regulation of flowering time in Arabidopsis during osmotic stress.

Nai-Zhi Chen, Xiu-Qing Zhang, Peng-Cheng Wei, Qi-Jun Chen, Fei Ren, Jia Chen, Xue-Chen Wang
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引用次数: 79

Abstract

The HAP complex has been found in many eukaryotic organisms. HAP recognizes the CCAAT box present in the promoters of 30% of all eukaryotic genes. The HAP complex consists of three subunits--HAP2, HAP3 and HAP5. In this paper, we report the biological function of the AtHAP3b gene that encodes one of the HAP3 subunits in Arabidopsis. Compared with wild-type plants, hap3b-1 and hap3b-2 mutants exhibited a delayed flowering time under long-day photoperiod conditions. Moreover, the transcription levels of FT were substantially lower in the mutants than in the wild-type plants. These results imply that AtHAP3b may function in the control of flowering time by regulating the expression of FT in Arabidopsis. In a subsequent study, AtHAP3b was found to be induced by osmotic stress. Under osmotic stress conditions, the hap3b-1 and hap3b-2 mutants flowered considerably later than the wild-type plants. These results suggest that the AtHAP3b gene plays more important roles in the control of lowering under osmotic stress in Arabidopsis.

AtHAP3b在渗透胁迫下拟南芥开花时间的调控中起关键作用。
在许多真核生物中发现了HAP复合物。HAP能识别30%真核生物基因启动子中的CCAAT盒子。HAP复合体由三个亚基——HAP2、HAP3和HAP5组成。在本文中,我们报道了在拟南芥中编码HAP3亚基之一的AtHAP3b基因的生物学功能。与野生型植物相比,在长日照条件下,hap3b-1和hap3b-2突变体开花时间延迟。此外,突变体中FT的转录水平明显低于野生型植物。这些结果表明,AtHAP3b可能通过调节拟南芥中FT的表达来调控开花时间。在随后的研究中,AtHAP3b被发现是由渗透胁迫诱导的。在渗透胁迫条件下,hap3b-1和hap3b-2突变体的开花时间明显晚于野生型植物。这些结果表明,AtHAP3b基因在控制拟南芥在渗透胁迫下的降低中发挥了更重要的作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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