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首页> 外文期刊>Frontiers in Plant Science >Genome-Wide Analysis of the Glucose-6-Phosphate Dehydrogenase Family in Soybean and Functional Identification of GmG6PDH2 Involvement in Salt Stress
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Genome-Wide Analysis of the Glucose-6-Phosphate Dehydrogenase Family in Soybean and Functional Identification of GmG6PDH2 Involvement in Salt Stress

机译:大豆葡萄糖-6-磷酸脱氢酶家族的基因组分析<斜斜体> GMG6PD2 盐胁迫的鉴定

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Glucose-6-phosphate dehydrogenase (G6PDH) is known as a critical enzyme responsible for nicotinamide adenine dinucleotide phosphate (NADPH) generation in the pentose phosphate pathway (PPP), and has an essential function in modulating redox homeostasis and stress responsiveness. In the present work, we characterized the nine members of the G6PDH gene family in soybean. Phylogenic analysis and transit peptide prediction showed that these soybean G6PDHs are divided into plastidic (P) and cytosolic (Cy) isoforms. The subcellular locations of five GmG6PDHs were further verified by confocal microscopy in Arabidopsis mesophyll protoplasts. The respective GmG6PDH genes had distinct expression patterns in various soybean tissues and at different times during seed development. Among them, the Cy - G6PDHs were strongly expressed in roots, developing seeds and nodules, while the transcripts of P-G6PDHs were mainly detected in green tissues. In addition, the activities and transcripts of GmG6PDHs were dramatically stimulated by different stress treatments, including salt, osmotic and alkali. Notably, the expression levels of a cytosolic isoform (GmG6PDH2) were extraordinarily high under salt stress and correlated well with the G6PDH enzyme activities, possibly implying a crucial factor for soybean responses to salinity. Enzymatic assay of recombinant GmG6PDH2 proteins expressed in Escherichia coli showed that the enzyme encoded by GmG6PDH2 had functional NADP ~(+)-dependent G6PDH activity. Further analysis indicated overexpression of GmG6PDH2 gene could significantly enhance the resistance of transgenic soybean to salt stress by coordinating with the redox states of ascorbic acid and glutathione pool to suppress reactive oxygen species generation. Together, these results indicate that GmG6PDH2 might be the major isoform for NADPH production in PPP, which is involved in the modulation of cellular AsA-GSH cycle to prevent the oxidative damage induced by high salinity.
机译:葡萄糖-6-磷酸脱氢酶(G6PDH)被称为负责磷酸磷酸盐途径(PPP)中的烟酰胺腺嘌呤二核苷酸磷酸(NADPH)产生的关键酶,并且具有调节氧化还原稳态和应激反应性的基本功能。在目前的工作中,我们在大豆中表征了G6PDH基因家族的九个成员。系统发生分析和过渡肽预测显示,这些大豆G6PDH分为塑性(P)和细胞溶质(CY)同种型。通过拟南芥叶片原生质体中的共聚焦显微镜进一步验证了五种GMG6PDH的亚细胞位置。各种GMG6PDH基因在种子发育过程中具有不同的表达模式。其中,Cy - G6PDHs在根,显影种子和结节中强烈表达,而P-G6PDHs的转录物主要在绿色组织中检测。此外,GMG6PDHs的活动和转录物通过不同的应激处理显着刺激,包括盐,渗透和碱。值得注意的是,细胞溶质同种型(GMG6PDH2)的表达水平在盐胁迫下非常高,与G6PDH酶活性很好地相关,可能暗示大豆对盐度的关键因素。在大肠杆菌中表达的重组GMG6PDH2蛋白的酶测定表明,GMG6PDH2编码的酶具有功能性NADP〜(+) - 依赖性G6PDH活性。进一步的分析表明GMG6PDH2基因的过表达可以通过与抗坏血酸和谷胱甘肽池的氧化还原态协调来显着提高转基因大豆与盐胁迫的抗性,以抑制反应性氧物种产生。这些结果表明,GMG6PDH2可能是PPP中NADPH产生的主要同种型,其参与蜂窝ASA-GSH循环的调节,以防止高盐度引起的氧化损伤。

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