Key Laboratory of Biorheological Science and Technology, Ministry of Education, Bioengineering College, Chongqing University, Chongqing, 400030, China.
Plant J. 2018 Sep;95(6):1004-1022. doi: 10.1111/tpj.14007. Epub 2018 Jul 29.
The phytohormone auxin is essential for root development in plants. OsMADS25 is a homologue of the AGL17-clade MADS-box genes in rice. Despite recent progress, the molecular mechanisms underlying the regulation of root development by OsMADS25 are not well known. It is unclear whether OsMADS25 regulates root development via auxin signalling. In this study, we examined the role of OsMADS25 in root development and characterized the signalling pathway through which OsMADS25 regulates root system development in rice. OsMADS25 overexpression significantly increased, but RNAi gene silencing repressed primary root (PR) length and lateral root (LR) density. Moreover, OsMADS25 promoted LR development in response to NO . Further study showed that OsMADS25 increased auxin accumulation in the root system by enhancing auxin biosynthesis and transport, while also reducing auxin degradation, therefore stimulating root development. More importantly, OsMADS25 was found to regulate OsIAA14 expression directly by binding to the CArG-box in the promoter region of OsIAA14, which encodes an Aux/indole acetic acid (IAA) transcriptional repressor of auxin signalling. Elevated auxin levels and decreased OsIAA14 expression might lead to reduced OsIAA14 protein accumulation, as a mechanism to regulate auxin signalling. Therefore, our findings reveal a molecular mechanism by which OsMADS25 modulates root system growth and development in rice, at least partilly, via Aux/IAA-based auxin signalling.
植物激素生长素对于植物根系发育至关重要。OsMADS25 是水稻 AGL17 族 MADS 盒基因的同源物。尽管最近取得了进展,但 OsMADS25 调控根系发育的分子机制尚不清楚。目前尚不清楚 OsMADS25 是否通过生长素信号来调控根系发育。在本研究中,我们研究了 OsMADS25 在根系发育中的作用,并鉴定了 OsMADS25 调控水稻根系系统发育的信号通路。过表达 OsMADS25 显著增加了主根(PR)长度和侧根(LR)密度,但 RNAi 基因沉默则抑制了主根(PR)长度和侧根(LR)密度。此外,OsMADS25 促进了对 NO 的响应下的 LR 发育。进一步的研究表明,OsMADS25 通过增强生长素的生物合成和运输,同时减少生长素的降解,从而增加生长素在根系中的积累,促进根系发育。更重要的是,发现 OsMADS25 通过与 OsIAA14 启动子区域中的 CArG 盒结合,直接调控 OsIAA14 的表达,而 OsIAA14 编码生长素信号的Aux/吲哚乙酸(IAA)转录抑制剂。生长素水平的升高和 OsIAA14 表达的降低可能导致 OsIAA14 蛋白积累减少,这是一种调节生长素信号的机制。因此,我们的研究结果揭示了 OsMADS25 通过基于 Aux/IAA 的生长素信号调控水稻根系生长和发育的分子机制,至少部分通过该机制来实现。