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F -box 蛋白 SAGL1 和 ECERIFERUM3 响应拟南芥湿度变化调控角质层蜡生物合成。

The F-Box Protein SAGL1 and ECERIFERUM3 Regulate Cuticular Wax Biosynthesis in Response to Changes in Humidity in Arabidopsis.

机构信息

Department of Life Science, Sogang University, Seoul 04107, Republic of Korea.

Department of Bioenergy Science and Technology, Chonnam National University, Gwangju 61186, Republic of Korea.

出版信息

Plant Cell. 2019 Sep;31(9):2223-2240. doi: 10.1105/tpc.19.00152. Epub 2019 Jul 18.

Abstract

Cuticular waxes, which cover the aboveground parts of land plants, are essential for plant survival in terrestrial environments. However, little is known about the regulatory mechanisms underlying cuticular wax biosynthesis in response to changes in ambient humidity. Here, we report that the Arabidopsis () Kelch repeat F-box protein SMALL AND GLOSSY LEAVES1 (SAGL1) mediates proteasome-dependent degradation of ECERIFERUM3 (CER3), a biosynthetic enzyme involved in the production of very long chain alkanes (the major components of wax), thereby negatively regulating cuticular wax biosynthesis. Disruption of led to severe growth retardation, enhanced drought tolerance, and increased wax accumulation in stems, leaves, and roots. Cytoplasmic SAGL1 physically interacts with CER3 and targets it for degradation. β‑glucuronidase () expression was observed in the roots of : plants but was barely detected in aerial organs. High humidity-induced GUS activity and transcript levels were reduced in response to abscisic acid treatment and water deficit. SAGL1 levels increase under high humidity, and the stability of this protein is regulated by the 26S proteasome. These findings indicate that the SAGL1-CER3 module negatively regulates cuticular wax biosynthesis in Arabidopsis in response to changes to humidity, and they highlight the importance of permeable cuticle formation in terrestrial plants under high humidity conditions.

摘要

表皮蜡质覆盖陆地植物的地上部分,对于植物在陆地环境中的生存至关重要。然而,对于表皮蜡质生物合成响应环境湿度变化的调控机制知之甚少。在这里,我们报告拟南芥()Kelch repeat F-box 蛋白 SMALL AND GLOSSY LEAVES1(SAGL1)介导质体蛋白酶体依赖性降解 ECERIFERUM3(CER3),CER3 是一种参与生产超长链烷烃(蜡的主要成分)的生物合成酶,从而负调控表皮蜡质生物合成。破坏导致严重的生长迟缓、增强的耐旱性以及茎、叶和根中蜡的积累增加。细胞质 SAGL1 与 CER3 物理相互作用,并将其靶向降解。在:植物的根中观察到β-葡糖苷酸酶()表达,但在气生器官中几乎检测不到。高湿度诱导的 GUS 活性和表达水平降低,对脱落酸处理和水分亏缺的反应。SAGL1 水平在高湿度下增加,并且该蛋白的稳定性受到 26S 蛋白酶体的调节。这些发现表明,SAGL1-CER3 模块在拟南芥中负调控表皮蜡质生物合成以响应湿度变化,并强调了在高湿度条件下陆地植物形成可渗透的角质层的重要性。

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