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首页> 外文期刊>Comparative biochemistry and physiology, Part D. Genomics & proteomics >Predicting growth and mortality of bivalve larvae using gene expression and supervised machine learning
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Predicting growth and mortality of bivalve larvae using gene expression and supervised machine learning

机译:使用基因表达和监督机器学习预测双壳幼虫的生长和死亡率

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It is commonly known that the nature of the diet has diverse consequences on larval performance and longevity, however it is still unclear which genes have critical impacts on bivalve development and which pathways are of particular importance in their vulnerability or resistance. First we show that a diet deficient in essential fatty acid (EFA) produces higher larval mortality rates, a reduced shell growth, and lower postlarval performance, all of which are positively correlated with a decline in arachidonic and eicosapentaenoic acids levels, two EFAs known as eicosanoid precursors. Eicosanoids affect the cell inflammatory reactions and are synthesized from long-chain EFAs. Second, we show for the first time that a deficiency in eicosanoid precursors is associated with a network of 29 genes. Their differential regulation can lead to slower growth and higher mortality of Mytilus edulis larvae. Some of these genes are specific to bivalves and others are implicated at the same time in lipid metabolism and defense. Several genes are expressed only during pre-metamorphosis where they are essential for muscle or neurone development and biomineralization, but only in stress-induced larvae. Finally, we discuss how our networks of differentially expressed genes might dynamically alter the development of marine bivalves, especially under dietary influence. (C) 2015 Elsevier Inc. All rights reserved.
机译:众所周知,饮食的性质对幼虫的表现和寿命有多种影响,但是,尚不清楚哪些基因对双壳动物的发育有关键影响,哪些途径对其脆弱性或抗性特别重要。首先,我们证明缺乏必需脂肪酸(EFA)的饮食会导致幼虫死亡率较高,壳生长降低以及幼虫后性能降低,所有这些都与花生四烯酸和二十碳五烯酸水平的下降呈正相关,这两种EFA被称为类二十烷酸前体。类花生酸影响细胞的炎症反应,是由长链EFA合成的。其次,我们首次证明类花生酸前体的缺乏与29个基因的网络有关。它们的差异性调节可导致可食的Mytilus edulis幼虫的生长减慢,死亡率更高。这些基因中的某些特异于双壳类,而其他一些基因则同时参与脂质代谢和防御。几个基因仅在变形前期表达,它们在肌肉或神经元发育和生物矿化中必不可少,但仅在应激诱导的幼虫中表达。最后,我们讨论了差异表达基因的网络如何动态改变海洋双壳类动物的发育,尤其是在饮食影响下。 (C)2015 Elsevier Inc.保留所有权利。

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