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Phosphatidylinositol-specific phospholipase C interaction with G-proteins in relation to the environmental stress response in wheat (Triticum aestivum)

机译:磷脂酰肌醇特异性磷脂酶C与G蛋白的相互作用与小麦(Triticum aestivum)的环境胁迫反应有关

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摘要

Tolerance to environmental stress in plants is controlled by several internal factors and environmental signals. In this study, we have focused on phosphatidylinositol-specific phospholipase C (TaPI-PLC) and phosphoglycerol-specific phospholipase C (TaPG-PLC) in wheat, Triticum aestivum . Three homologs of TaPG-PLCs were identified as cDNA with high sequence similarity to rice and Arabidopsis PG-PLC1. TaPG-PLC3 was mapped on the distal part of the long arm of chromosome 5A, whereas TaPG-PLC1 and TaPG-PLC2 like genes appear to be duplicated in two of hexploid wheat 3 three genomes. A TaPG-PLC1::Green fluorescent protein (GFP)-fusion was localized on endoplasmic reticulum (ER), golgi and plasma membrane (PM). Important protein-protein interactions were found for wheat PI-PLCs. The PI-PLCI::GFP fusion was localized on ER-and PM. In vivo interactions between TaPI-PLC1 and two classes of G-proteins, the heterotrimeric G protein subunit TaGa and a non-canonicat G-protein J822, were detected using Bimolecular Fluorescent Complementation (BiFC). The interactions were detected in both the ER and PM. In contrast, TaPI-PLC2::GFP fusion was localized only on PM and was not found to interact with TaGÜ or J822 . Since both TaPI-PLC 1 and J822 are up-regulated by cold stress and it is possible that they play an important role in signaling during cold acclimation
机译:植物对环境胁迫的耐受性受多种内部因素和环境信号的控制。在这项研究中,我们集中于小麦小麦中磷脂酰肌醇特异性磷脂酶C(TaPI-PLC)和磷酸甘油特异性磷脂酶C(TaPG-PLC)。 TaPG-PLC的三个同源物被鉴定为与水稻和拟南芥PG-PLC1具有高度序列相似性的cDNA。 TaPG-PLC3定位在5A染色体长臂的远端,而TaPG-PLC1和TaPG-PLC2样基因似乎在两个小麦3个三个基因组中重复。 TaPG-PLC1 :: Green荧光蛋白(GFP)融合位于内质网(ER),高尔基体和质膜(PM)上。已发现小麦PI-PLC具有重要的蛋白质-蛋白质相互作用。 PI-PLCI :: GFP融合物位于ER-和PM上。使用双分子荧光互补(BiFC)检测了TaPI-PLC1与两类G蛋白(异三聚体G蛋白亚基TaGa和非规范G蛋白J822)之间的体内相互作用。在ER和PM中都检测到了相互作用。相反,TaPI-PLC2 :: GFP融合仅定位在PM上,未发现与TaGÜ或J822相互作用。由于TaPI-PLC 1和J822均受冷胁迫上调,因此它们可能在冷驯化过程中的信号传导中起重要作用

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    Khalil Hala;

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  • 年度 2009
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