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首页> 外文期刊>BMC Plant Biology >Putative trehalose biosynthesis proteins function as differential floridoside-6-phosphate synthases to participate in the abiotic stress response in the red alga Pyropia haitanensis
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Putative trehalose biosynthesis proteins function as differential floridoside-6-phosphate synthases to participate in the abiotic stress response in the red alga Pyropia haitanensis

机译:推定的海藻糖生物合成蛋白起不同的floridoside-6磷酸合成酶的作用,参与红藻海坛拟南芥的非生物胁迫响应。

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The heteroside floridoside is a primary photosynthetic product that is known to contribute to osmotic acclimation in almost all orders of Rhodophyta. However, the encoding genes and enzymes responsible for the synthesis of floridoside and its isomeric form, l- or d-isofloridoside, are poorly studied. Here, four putative trehalose-6-phosphate synthase (TPS) genes, designated as PhTPS1, PhTPS2, PhTPS3, and PhTPS4, were cloned and characterized from the red alga Pyropia haitanensis (Bangiophyceae). The deduced amino acid sequence is similar to the annotated TPS proteins of other organisms, especially the UDP-galactose substrate binding sites of PhTPS1, 2, which are highly conserved. Of these, PhTPS1, 4 are involved in the biosynthesis of floridoside and isofloridoside, with isofloridoside being the main product. PhTPS3 is an isofloridoside phosphate synthase, while PhTPS2 exhibits no activity. When challenged by desiccation, high temperature, and salt stress, PhTPS members were expressed to different degrees, but the responses to thermal stress and desiccation were stronger. Thus, in P. haitanensis, PhTPSs encode the enzymatical activity of floridoside and isofloridoside phosphate synthase and are crucial for the abiotic stress defense response.
机译:杂花苷甙是一种主要的光合产物,已知在几乎所有阶的红藻中都有助于渗透适应。然而,对负责合成花苷的合成的编码基因和酶及其异构体形式的L-或D-异花苷的研究很少。在这里,从红藻海坛Pyropia haitanensis(Bangiophyceae)克隆并鉴定了四个推定的海藻糖6-磷酸合酶(TPS)基因,分别命名为PhTPS1,PhTPS2,PhTPS3和PhTPS4。推导的氨基酸序列与其他生物的带注释的TPS蛋白相似,尤其是PhTPS1,2的UDP-半乳糖底物结合位点,其高度保守。其中,PhTPS1,4参与了花苷和异花苷的生物合成,其中异花苷是主要产物。 PhTPS3是异花苷磷酸酯合酶,而PhTPS2没有活性。当受到干燥,高温和盐胁迫的挑战时,PhTPS成员表达程度不同,但对热应力和干燥的响应更强。因此,在海坛假单胞菌中,PhTPSs编码了floridoside和isofloridoside磷酸合酶的酶活性,并且对于非生物胁迫防御反应至关重要。

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