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SlMYB99 通过拮抗调节生长素和脱落酸来调控番茄抗坏血酸的生物合成。

SlMYB99-mediated auxin and abscisic acid antagonistically regulate ascorbic acids biosynthesis in tomato.

机构信息

Key Laboratory of Plant Hormones and Development Regulation of Chongqing, School of Life Sciences, Chongqing University, Chongqing, 400044, China.

出版信息

New Phytol. 2023 Aug;239(3):949-963. doi: 10.1111/nph.18988. Epub 2023 May 29.

Abstract

Ascorbic acid (AsA) is a water-soluble antioxidant that plays important roles in plant development and human health. Understanding the regulatory mechanism underlying AsA biosynthesis is imperative to the development of high AsA plants. In this study, we reveal that the auxin response factor SlARF4 transcriptionally inhibits SlMYB99, which subsequently modulates AsA accumulation via transcriptional activation of AsA biosynthesis genes GPP, GLDH, and DHAR. The auxin-dependent transcriptional cascade of SlARF4-SlMYB99-GPP/GLDH/DHAR modulates AsA synthesis, while mitogen-activated protein kinase SlMAPK8 not only phosphorylates SlMYB99, but also activates its transcriptional activity. Both SlMYB99 and SlMYB11 proteins physically interact with each other, thereby synergistically regulating AsA biosynthesis by upregulating the expression of GPP, GLDH, and DHAR genes. Collectively, these results demonstrate that auxin and abscisic acid antagonistically regulate AsA biosynthesis during development and drought tolerance in tomato via the SlMAPK8-SlARF4-SlMYB99/11 module. These findings provide new insights into the mechanism underlying phytohormone regulation of AsA biosynthesis and provide a theoretical basis for the future development of high AsA plants via molecular breeding.

摘要

抗坏血酸(AsA)是一种水溶性抗氧化剂,在植物发育和人类健康中发挥着重要作用。了解 AsA 生物合成的调控机制对于开发高 AsA 植物至关重要。在这项研究中,我们揭示了生长素响应因子 SlARF4 转录抑制 SlMYB99,进而通过转录激活 AsA 生物合成基因 GPP、GLDH 和 DHAR 来调节 AsA 积累。SlARF4-SlMYB99-GPP/GLDH/DHAR 的生长素依赖性转录级联调节 AsA 合成,而丝裂原活化蛋白激酶 SlMAPK8 不仅磷酸化 SlMYB99,还激活其转录活性。SlMYB99 和 SlMYB11 蛋白彼此物理相互作用,从而通过上调 GPP、GLDH 和 DHAR 基因的表达协同调节 AsA 生物合成。总之,这些结果表明,在番茄的发育和干旱耐受性中,生长素和脱落酸通过 SlMAPK8-SlARF4-SlMYB99/11 模块拮抗调节 AsA 生物合成。这些发现为植物激素调节 AsA 生物合成的机制提供了新的见解,并为通过分子育种未来开发高 AsA 植物提供了理论依据。

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