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A multilevel investigation to discover why Kandelia candel thrives in high salinity

机译:一项多层次调查,以了解为什么坎德里亚(Kandelia)坎德尔(Candel)在高盐度下壮成长

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The halophilic mangrove species Kandelia candel is an excellent model for understanding why halophytes thrive in high salinity. Preliminary transcriptomic analyses revealed that genes involved in diverse functions, such as in phenylpropanoid and amino acid metabolisms, and those in DNA replication and damage repair were highly responsive to salt stress. Proteomic analyses revealed that the proteins involved in light reaction of photosynthesis, amino acid and carbohydrate metabolisms, secondary metabolite biosynthesis and posttranslational modification showed increased levels in response to salt stress. The metabolisms of phenylpropanoids and amino acids under salt stress were systematically examined based on the preliminary omics analyses. The activities of phenylpropanoid biosynthetic enzymes and the contents of phenols, flavonoids, anthocyanins and lignins were significantly increased under salt stress. In the free amino acid pool, glutamate was the most abundant. Together with -aminobutyric acid, glutamate levels further increased, while proline levels remained unchanged in response to salt stress. These findings point to the potential importance of phenylpropanoids and free amino acids in salt tolerance of K.candel that have been observed, but not systemically investigated at the levels of gene expression, enzyme activity and metabolite accumulation in glycophytes and non-tree halophytes.
机译:嗜盐红树林物种Kandelia candel是了解为什么盐生植物在高盐度条件下壮成长的绝佳典范。初步的转录组分析表明,参与多种功能的基因(例如,苯丙氨酸和氨基酸代谢)以及涉及DNA复制和损伤修复的基因对盐胁迫高度敏感。蛋白质组学分析显示,参与光合作用的光反应,氨基酸和碳水化合物代谢,次生代谢产物的生物合成和翻译后修饰的蛋白质显示出对盐胁迫的响应增加。在初步的组学分析的基础上,系统地研究了盐胁迫下苯丙烷和氨基酸的代谢。在盐胁迫下,苯丙烷类生物合成酶的活性以及酚,类黄酮,花青素和木质素的含量均显着增加。在游离氨基酸库中,谷氨酸含量最高。与-氨基丁酸一起,谷氨酸水平进一步增加,而脯氨酸水平响应盐胁迫而保持不变。这些发现表明,已观察到苯丙烷和游离氨基酸对K.candel的耐盐性的潜在重要性,但尚未在糖原植物和非树状植物中的基因表达,酶活性和代谢产物积累水平上进行系统研究。

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