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Evidence for a Saponin Biosynthesis Pathway in the Body Wall of the Commercially Significant Sea Cucumber Holothuria scabra

机译:具有商业意义的海参Holothuria scabra体壁中皂苷生物合成途径的证据

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摘要

The sea cucumber (phylum Echinodermata) body wall is the first line of defense and is well known for its production of secondary metabolites; including vitamins and triterpenoid glycoside saponins that have important ecological functions and potential benefits to human health. The genes involved in the various biosynthetic pathways are unknown. To gain insight into these pathways in an echinoderm, we performed a comparative transcriptome analysis and functional annotation of the body wall and the radial nerve of the sea cucumber Holothuria scabra; to define genes associated with body wall metabolic functioning and secondary metabolite biosynthesis. We show that genes related to signal transduction mechanisms were more highly represented in the H. scabra body wall, including genes encoding enzymes involved in energy production. Eight of the core triterpenoid biosynthesis enzymes were found, however, the identity of the saponin specific biosynthetic pathway enzymes remains unknown. We confirm the body wall release of at least three different triterpenoid saponins using solid phase extraction followed by ultra-high-pressure liquid chromatography-quadrupole time of flight-mass spectrometry. The resource we have established will help to guide future research to explore secondary metabolite biosynthesis in the sea cucumber.
机译:海参(鸡胚棘皮动物)体壁是第一道防线,并因其产生次生代谢产物而闻名。包括维生素和三萜糖苷皂苷,它们具有重要的生态功能和对人体健康的潜在益处。涉及各种生物合成途径的基因是未知的。为了深入了解棘皮动物中的这些途径,我们对海参Holothuria scabra的体壁和the神经进行了比较转录组分析和功能注释。定义与体壁代谢功能和次生代谢产物生物合成相关的基因。我们表明,与信号转导机制相关的基因在H. scabra体壁中得到了更高的代表,包括编码参与能量产生的酶的基因。发现了八种核心三萜生物合成酶,但是,皂苷特异的生物合成途径酶的身份仍然未知。我们使用固相萃取,随后超高压液相色谱-四极杆飞行时间质谱法,确认了至少三种不同的三萜皂苷的体壁释放。我们建立的资源将有助于指导未来的研究,以探索海参中次生代谢产物的生物合成。

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