首页> 外文OA文献 >A multidomain enzyme, with glycerol-3-phosphate dehydrogenase and phosphatase activities, is involved in a chloroplastic pathway for glycerol synthesis in \u3ci\u3eChlamydomonas reinhardtii\u3c/i\u3e
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A multidomain enzyme, with glycerol-3-phosphate dehydrogenase and phosphatase activities, is involved in a chloroplastic pathway for glycerol synthesis in \u3ci\u3eChlamydomonas reinhardtii\u3c/i\u3e

机译:具有甘油-3-磷酸脱氢酶和磷酸酶活性的多结构域酶是 参与了莱茵衣藻(Chlamydomonas reinhardtii)的甘油合成的叶绿体途径

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摘要

Understanding the unique features of algal metabolism may be necessary to realize the full potential of algae as feedstock for the production of biofuels and biomaterials. Under nitrogen deprivation, the green alga C. reinhardtii showed substantial triacylglycerol (TAG) accumulation and up-regulation of a gene, GPD2, encoding a multidomain enzyme with a putative phosphoserine phosphatase (PSP) motif fused to glycerol-3-phosphate dehydrogenase (GPD) domains. Canonical GPD enzymes catalyze the synthesis of glycerol-3-phosphate (G3P) by reduction of dihydroxyacetone phosphate (DHAP). G3P forms the backbone of TAGs and membrane glycerolipids and it can be dephosphorylated to yield glycerol, an osmotic stabilizer and compatible solute under hypertonic stress. Recombinant Chlamydomonas GPD2 showed both reductase and phosphatase activities in vitro and it can work as a bifunctional enzyme capable of synthesizing glycerol directly from DHAP. In addition, GPD2 and a gene encoding glycerol kinase were up-regulated in Chlamydomonas cells exposed to high salinity. RNAmediated silencing of GPD2 revealed that the multidomain enzyme was required for TAG accumulation under nitrogen deprivation and for glycerol synthesis under high salinity. Moreover, a GPD2-mCherry fusion protein was found to localize to the chloroplast, supporting the existence of a GPD2-dependent plastid pathway for the rapid synthesis of glycerol in response to hyperosmotic stress. We hypothesize that the reductase and phosphatase activities of PSP-GPD multidomain enzymes may be modulated by post-translational modifications/mechanisms, allowing them to synthesize primarily G3P or glycerol depending on environmental conditions and/or metabolic demands in algal species of the core Chlorophytes.
机译:为了充分利用藻类作为生产生物燃料和生物材料的原料的潜力,可能需要了解藻类代谢的独特特征。在氮剥夺下,绿藻莱茵衣藻显示出大量的三酰基甘油(TAG)积累和基因GPD2的上调,该基因编码带有推定的磷酸丝氨酸磷酸酶(PSP)基序的多域酶,该基序融合了3-磷酸甘油脱氢酶(GPD) )域。规范的GPD酶通过还原磷酸二羟基丙酮(DHAP)来催化3-磷酸甘油(G3P)的合成。 G3P形成TAG和膜甘油脂的骨架,在高渗胁迫下,G3P可被去磷酸化,生成甘油,一种渗透性稳定剂和相容性溶质。重组衣藻GPD2在体外具有还原酶和磷酸酶的活性,它可以作为双功能酶起作用,能够直接从DHAP合成甘油。另外,在暴露于高盐度的衣藻细胞中,GPD2和编码甘油激酶的基因被上调。 RNA介导的GPD2沉默显示,多域酶是氮剥夺下TAG积累和高盐度下甘油合成所必需的。此外,发现GPD2-mCherry融合蛋白定位于叶绿体,支持存在GPD2依赖性质体途径,以响应高渗胁迫快速合成甘油。我们假设PSP-GPD多域酶的还原酶和磷酸酶活性可能受翻译后修饰/机制的调节,使它们主要根据环境条件和/或核心绿藻藻类藻类的代谢需求而主要合成G3P或甘油。

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