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基本螺旋-环-螺旋转录因子 MYC1 和 MYC2 在番茄组成型和应激诱导的特化代谢物的调控中具有双重作用。

The basic helix-loop-helix transcription factors MYC1 and MYC2 have a dual role in the regulation of constitutive and stress-inducible specialized metabolism in tomato.

机构信息

Department of Plant Biotechnology and Bioinformatics, Ghent University, 9052, Ghent, Belgium.

VIB Center for Plant Systems Biology, 9052, Ghent, Belgium.

出版信息

New Phytol. 2022 Nov;236(3):911-928. doi: 10.1111/nph.18379. Epub 2022 Aug 15.

Abstract

Plants produce specialized metabolites to protect themselves from biotic enemies. Members of the Solanaceae family accumulate phenylpropanoid-polyamine conjugates (PPCs) in response to attackers while also maintaining a chemical barrier of steroidal glycoalkaloids (SGAs). Across the plant kingdom, biosynthesis of such defense compounds is promoted by jasmonate signaling in which clade IIIe basic helix-loop-helix (bHLH) transcription factors play a central role. By characterizing hairy root mutants obtained through Clustered Regularly Interspaced Short Palindromic Repeats (CRISPR)-CRISPR associated protein 9 (CRISPR-Cas9) genome editing, we show that the tomato clade IIIe bHLH transcription factors, MYC1 and MYC2, redundantly control jasmonate-inducible PPC and SGA production, and are also essential for constitutive SGA biosynthesis. Double myc1 myc2 loss-of-function tomato hairy roots displayed suppressed constitutive expression of SGA biosynthesis genes, and severely reduced levels of the main tomato SGAs α-tomatine and dehydrotomatine. In contrast, basal expression of genes involved in PPC biosynthesis was not affected. CRISPR-Cas9(VQR) genome editing of a specific cis-regulatory element, targeted by MYC1/2, in the promoter of a SGA precursor biosynthesis gene led to decreased constitutive expression of this gene, but did not affect its jasmonate inducibility. Our results demonstrate that clade IIIe bHLH transcriptional regulators have evolved under the control of distinct regulatory cues to specifically steer constitutive and stress-inducible specialized metabolism.

摘要

植物会产生特化代谢物来保护自己免受生物敌人的侵害。茄科家族的成员在受到攻击时会积累苯丙氨酸多胺缀合物(PPCs),同时还维持甾体糖苷生物碱(SGAs)的化学屏障。在整个植物界,茉莉酸信号促进了此类防御化合物的生物合成,其中 IIIe 类碱性螺旋-环-螺旋(bHLH)转录因子发挥着核心作用。通过对通过 Clustered Regularly Interspaced Short Palindromic Repeats(CRISPR)-CRISPR 相关蛋白 9(CRISPR-Cas9)基因组编辑获得的毛状根突变体进行表征,我们表明番茄 IIIe 类 bHLH 转录因子 MYC1 和 MYC2 冗余地控制茉莉酸诱导的 PPC 和 SGA 产生,并且对于组成型 SGA 生物合成也是必需的。双 myc1 myc2 功能丧失型番茄毛状根显示出组成型 SGA 生物合成基因表达受到抑制,并且主要番茄 SGAsα-茄碱和脱氢茄碱的水平严重降低。相比之下,PPC 生物合成基因的组成型表达不受影响。通过 CRISPR-Cas9(VQR)基因组编辑靶向 MYC1/2 靶向的特定顺式调节元件,在 SGA 前体生物合成基因的启动子中,导致该基因的组成型表达降低,但不影响其对茉莉酸的诱导。我们的结果表明,IIIe 类 bHLH 转录因子在不同调节信号的控制下进化,以专门调控组成型和应激诱导的特化代谢。

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