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The GDSL Lipase MHZ11 Modulates Ethylene Signaling in Rice Roots

机译:GDSL脂肪酶MHz11调节水稻根系中的乙烯信号传导

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摘要

Ethylene plays important roles in plant growth and development, but the regulation of ethylene signaling is largely unclear, especially in crops such as rice (Oryza sativa). Here, by analysis of the ethylene-insensitive mutant mao huzi 11 (mhz11), we identified the GDSL lipase MHZ11, which modulates ethylene signaling in rice roots. MHZ11 localized to the endoplasmic reticulum membrane and has acyl-hydrolyzing activity. This activity affects the homeostasis of sterols in rice roots and is required for root ethylene response. MHZ11 overexpression caused constitutive ethylene response in roots. Genetically, MHZ11 acts with the ethylene receptor ETHYLENE RESPONSE SENSOR2 (OsERS2) upstream of CONSTITUTIVE TRIPLE RESPONSE2 (OsCTR2) and ETHYLENE INSENSITIVE2 (OsEIN2). The mhz11 mutant maintains more OsCTR2 in the phosphorylated form whereas MHZ11 overexpression promotes ethylene-mediated inhibition of OsCTR2 phosphorylation. MHZ11 colocalized with the ethylene receptor OsERS2, and its effect on OsCTR2 phosphorylation requires ethylene perception and initiation of ethylene signaling. The mhz11 mutant overaccumulated sterols and blocking sterol biosynthesis partially rescued the mhz11 ethylene response, likely by reducing receptor-OsCTR2 interaction and OsCTR2 phosphorylation. We propose that MHZ11 reduces sterol levels to impair receptor-OsCTR2 interactions and OsCTR2 phosphorylation for triggering ethylene signaling. Our study reveals a mechanism by which MHZ11 participates in ethylene signaling for regulation of root growth in rice.
机译:乙烯在植物生长和发展中起重要作用,但乙烯信号传导的调节在很大程度上不清楚,特别是在稻米(Oryza sativa)等作物中。这里,通过分析乙烯不敏感突变体MAO HUZI 11(MHz11),我们鉴定了GDSL脂肪酶MHz11,其调节水稻根中的乙烯信号传导。 MHz11本地化为内质网膜并具有酰基水解活性。该活性会影响水稻根系中甾醇的稳态,并且是根乙烯反应所必需的。 MHz11过表达引起根系的组成型乙烯反应。遗传上,MHz11与组成型三元响应2(OSCTR2)和乙烯短敏感2(Osein2)上游的乙烯受体乙烯响应传感器2(OSERS2)作用。 MHz11突变体在磷酸化形式中保持更多OSCTR 2,而MHz11过表达促进乙烯介导的OSCTR2磷酸化的抑制。用乙烯受体OSERS2与乙烯受体OSERS2分致的MHz11,其对OSCTR2磷酸化的影响需要乙烯感知和乙烯信号传导。 MHz11突变体过度累累的甾醇并阻断甾醇生物合成部分地拯救了MHz11乙烯反应,可能通过还原受体-SOCTR2相互作用和OSCTR2磷酸化。我们提出MHz11减少甾醇水平损害受体 - OSCTR2相互作用和OSCTR2磷酸化以触发乙烯信号传导。我们的研究揭示了一种机制,MHz11参与乙烯信号以进行水稻根系生长的调控。

著录项

  • 来源
    《The Plant Cell》 |2020年第5期|共18页
  • 作者单位

    Chinese Acad Sci Innovat Acad Seed Design Inst Genet &

    Dev Biol State Key Lab Plant Genom Beijing 100101 Peoples R China;

    Univ Sci &

    Technol Beijing Biol &

    Agr Res Ctr Sch Chem &

    Biol Engn Beijing 100024 Peoples R China;

    Nanjing Agr Univ Dept Plant Pathol Nanjing 210095 Peoples R China;

    Chinese Acad Sci Innovat Acad Seed Design Inst Genet &

    Dev Biol State Key Lab Plant Genom Beijing 100101 Peoples R China;

    Chinese Acad Sci Innovat Acad Seed Design Inst Genet &

    Dev Biol State Key Lab Plant Genom Beijing 100101 Peoples R China;

    Chinese Acad Sci Innovat Acad Seed Design Inst Genet &

    Dev Biol State Key Lab Plant Genom Beijing 100101 Peoples R China;

    Chinese Acad Sci Innovat Acad Seed Design Inst Genet &

    Dev Biol State Key Lab Plant Genom Beijing 100101 Peoples R China;

    Chinese Acad Sci Innovat Acad Seed Design Inst Genet &

    Dev Biol State Key Lab Plant Genom Beijing 100101 Peoples R China;

    Chinese Acad Sci Innovat Acad Seed Design Inst Genet &

    Dev Biol State Key Lab Plant Genom Beijing 100101 Peoples R China;

    Chinese Acad Sci Natl Ctr Plant Gene Res Beijing Inst Genet &

    Dev Biol Beijing 100101 Peoples R China;

    Chinese Acad Sci Inst Genet &

    Dev Biol State Key Lab Mol &

    Dev Biol Beijing 100101 Peoples R China;

    Chinese Acad Sci Natl Ctr Plant Gene Res Beijing Inst Genet &

    Dev Biol Beijing 100101 Peoples R China;

    Chinese Acad Sci Inst Genet &

    Dev Biol State Key Lab Mol &

    Dev Biol Beijing 100101 Peoples R China;

    Chinese Acad Sci Innovat Acad Seed Design Inst Genet &

    Dev Biol State Key Lab Plant Genom Beijing 100101 Peoples R China;

    Chinese Acad Sci Innovat Acad Seed Design Inst Genet &

    Dev Biol State Key Lab Plant Genom Beijing 100101 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 植物细胞学;
  • 关键词

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