National Maize Improvement Center, China Agricultural University, 2 West Yuanmingyuan Road, Beijing 100193, China; State Key Laboratory of Protein and Plant Gene Research, Peking University, Beijing, 100871, China.
National Maize Improvement Center, China Agricultural University, 2 West Yuanmingyuan Road, Beijing 100193, China.
J Plant Physiol. 2019 Sep;240:152990. doi: 10.1016/j.jplph.2019.152990. Epub 2019 Jun 8.
Auxin is a well-known, crucial regulator of the entire plant lifecycle, not only orchestrating many aspects of plant growth and development, but also playing various roles in biotic and abiotic stress. This study reports the isolation and functional characterization of a DUF-966 domain-containing gene, At3g46110, re-named AtAuxRP3. AtAuxRP3 overexpression in Arabidopsis increased the levels of endogenous indole-3-acetic acid, enhanced expression of the auxin-responsive reporter DR5:GUS near the vegetative shoot apex, and led to ectopic activation of auxin signaling, including dysmorphic (narrow, asymmetric) rosette leaves, abnormal emergence of inflorescence, inhibition of primary root elongation and arrest of dark-grown hypocotyls. AtAuxRP3-OX lines also showed decreased tolerance to NaCl and osmotic stress during Arabidopsis seeds germination and young seedling growth. Genome-wide transcriptomic analysis showed AtAuxRP3-OX seedlings displayed increases in the expression of genes that group in a variety of developmental categories, while other downregulated genes were associated with stress responses. Our results provide evidence for a regulatory role of AtAuxRP3 in endogenous auxin levels, leaf development, and initiation of inflorescence stems early in reproductive development during Arabidopsis seedling growth.
生长素是一种众所周知的、至关重要的植物全生命周期调控因子,不仅协调植物生长和发育的许多方面,而且在生物和非生物胁迫中也发挥着各种作用。本研究报告了一个 DUF-966 结构域蛋白基因 At3g46110 的分离和功能特征,该基因被重新命名为 AtAuxRP3。拟南芥中 AtAuxRP3 的过表达增加了内源吲哚-3-乙酸的水平,增强了靠近营养芽顶端的生长素响应报告基因 DR5:GUS 的表达,并导致生长素信号的异位激活,包括畸形(狭窄、不对称)的莲座叶、花序的异常出现、主根伸长的抑制和黑暗生长下的下胚轴停止生长。AtAuxRP3-OX 系在拟南芥种子萌发和幼苗生长过程中对 NaCl 和渗透胁迫的耐受性也降低。全基因组转录组分析显示,AtAuxRP3-OX 幼苗中与多种发育类别相关的基因表达增加,而其他下调基因与应激反应有关。我们的研究结果为 AtAuxRP3 在调节内源生长素水平、叶片发育和拟南芥幼苗生长过程中生殖发育早期花序茎的起始中的作用提供了证据。