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甾醇调节拟南芥的发育和基因表达。

Sterols regulate development and gene expression in Arabidopsis.

作者信息

He Jun-Xian, Fujioka Shozo, Li Tsai-Chi, Kang Shin Gene, Seto Hideharu, Takatsuto Suguru, Yoshida Shigeo, Jang Jyan-Chyun

机构信息

RIKEN (The Institute of Physical and Chemical Research), Wako-shi, Saitama 351-0198, Japan.

出版信息

Plant Physiol. 2003 Mar;131(3):1258-69. doi: 10.1104/pp.014605.

Abstract

Sterols are important not only for structural components of eukaryotic cell membranes but also for biosynthetic precursors of steroid hormones. In plants, the diverse functions of sterol-derived brassinosteroids (BRs) in growth and development have been investigated rigorously, yet little is known about the regulatory roles of other phytosterols. Recent analysis of Arabidopsis fackel (fk) mutants and cloning of the FK gene that encodes a sterol C-14 reductase have indicated that sterols play a crucial role in plant cell division, embryogenesis, and development. Nevertheless, the molecular mechanism underlying the regulatory role of sterols in plant development has not been revealed. In this report, we demonstrate that both sterols and BR are active regulators of plant development and gene expression. Similar to BR, both typical (sitosterol and stigmasterol) and atypical (8, 14-diene sterols accumulated in fk mutants) sterols affect the expression of genes involved in cell expansion and cell division. The regulatory function of sterols in plant development is further supported by a phenocopy of the fk mutant using a sterol C-14 reductase inhibitor, fenpropimorph. Although fenpropimorph impairs cell expansion and affects gene expression in a dose-dependent manner, neither effect can be corrected by applying exogenous BR. These results provide strong evidence that sterols are essential for normal plant growth and development and that there is likely a BR-independent sterol response pathway in plants. On the basis of the expression of endogenous FK and a reporter gene FK::beta-glucuronidase, we have found that FK is up-regulated by several growth-promoting hormones including brassinolide and auxin, implicating a possible hormone crosstalk between sterol and other hormone-signaling pathways.

摘要

甾醇不仅对真核细胞膜的结构组成很重要,而且对类固醇激素的生物合成前体也很重要。在植物中,甾醇衍生的油菜素内酯(BRs)在生长和发育中的多种功能已得到深入研究,但对于其他植物甾醇的调节作用却知之甚少。最近对拟南芥fackel(fk)突变体的分析以及编码甾醇C-14还原酶的FK基因的克隆表明,甾醇在植物细胞分裂、胚胎发生和发育中起着关键作用。然而,甾醇在植物发育中调节作用的分子机制尚未揭示。在本报告中,我们证明甾醇和BR都是植物发育和基因表达的活性调节因子。与BR相似,典型(谷甾醇和豆甾醇)和非典型(在fk突变体中积累的8,14-二烯甾醇)甾醇都影响参与细胞扩张和细胞分裂的基因的表达。使用甾醇C-14还原酶抑制剂粉唑醇对fk突变体进行表型模拟,进一步支持了甾醇在植物发育中的调节功能。尽管粉唑醇以剂量依赖的方式损害细胞扩张并影响基因表达,但通过施加外源BR均无法纠正这两种效应。这些结果提供了强有力的证据,表明甾醇对于正常植物生长和发育至关重要,并且植物中可能存在一条不依赖BR的甾醇反应途径。基于内源性FK和报告基因FK::β-葡萄糖醛酸酶的表达,我们发现FK受到包括油菜素内酯和生长素在内的几种促进生长的激素的上调,这暗示甾醇与其他激素信号通路之间可能存在激素相互作用。

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