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首页> 外文期刊>The Plant Cell >A PP6-type phosphatase holoenzyme directly regulates PIN phosphorylation and auxin efflux in Arabidopsis.
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A PP6-type phosphatase holoenzyme directly regulates PIN phosphorylation and auxin efflux in Arabidopsis.

机译:PP6型磷酸酶全酶直接调节拟南芥中的PIN磷酸化和植物生长素外排。

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摘要

The directional transport of the phytohormone auxin depends on the phosphorylation status and polar localization of PIN-FORMED (PIN) auxin efflux proteins. While PINIOD (PID) kinase is directly involved in the phosphorylation of PIN proteins, the phosphatase holoenzyme complexes that dephosphorylate PIN proteins remain elusive. Here, we demonstrate that mutations simultaneously disrupting the function of Arabidopsis thaliana FyPP1 (for Phytochrome-associated serine/threonine protein phosphatase1) and FyPP3, two homologous genes encoding the catalytic subunits of protein phosphatase6 (PP6), cause elevated accumulation of phosphorylated PIN proteins, correlating with a basal-to-apical shift in subcellular PIN localization. The changes in PIN polarity result in increased root basipetal auxin transport and severe defects, including shorter roots, fewer lateral roots, defective columella cells, root meristem collapse, abnormal cotyledons (small, cup-shaped, or fused cotyledons), and altered leaf venation. Our molecular, biochemical, and genetic data support the notion that FyPP1/3, SAL (for SAPS DOMAIN-LIKE), and PP2AA proteins (RCN1 [for ROOTS CURL IN NAPHTHYLPHTHALAMIC ACID1] or PP2AA1, PP2AA2, and PP2AA3) physically interact to form a novel PP6-type heterotrimeric holoenzyme complex. We also show that FyPP1/3, SAL, and PP2AA interact with a subset of PIN proteins and that for SAL the strength of the interaction depends on the PIN phosphorylation status. Thus, an Arabidopsis PP6-type phosphatase holoenzyme acts antagonistically with PID to direct auxin transport polarity and plant development by directly regulating PIN phosphorylation.
机译:植物激素生长素的定向转运取决于PIN形成(PIN)生长素外排蛋白的磷酸化状态和极性定位。虽然PINIOD(PID)激酶直接参与PIN蛋白的磷酸化,但使PIN蛋白脱磷酸的磷酸酶全酶复合物仍然难以捉摸。在这里,我们证明了突变同时破坏了拟南芥FyPP1(与植物色素相关的丝氨酸/苏氨酸蛋白磷酸酶1)和FyPP3的功能,这两个同源基因编码蛋白磷酸酶6(PP6)的催化亚基,导致磷酸化PIN蛋白的积累增加,与亚细胞PIN定位中的基底到顶端移位相关。 PIN极性的变化导致根基基底生长素转运增加和严重缺陷,包括根短,侧根少,小柱状细胞缺陷,分生组织塌陷,子叶异常(小,杯状或融合的子叶)和叶脉改变。我们的分子,生化和遗传数据支持以下概念:FyPP1 / 3,SAL(对于SAPS DOMAIN-LIKE)和PP2AA蛋白(RCN1 [对于萘基萘中的根卷曲]或PP2AA1,PP2AA2和PP2AA3)物理相互作用形成一种新型的PP6型异三聚体全酶复合物。我们还显示,FyPP1 / 3,SAL和PP2AA与一部分PIN蛋白相互作用,而对于SAL,相互作用的强度取决于PIN磷酸化状态。因此,拟南芥PP6型磷酸酶全酶与PID拮抗,通过直接调节PIN磷酸化来指导植物生长素的运输极性和植物发育。

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