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Transcriptome Sequencing and De Novo Assembly of Golden Cuttlefish Sepia esculenta Hoyle

机译:墨鱼乌贼棕的转录组测序和从头组装

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Golden cuttlefish Sepia esculenta Hoyle is an economically important cephalopod species. However, artificial hatching is currently challenged by low survival rate of larvae due to abnormal embryonic development. Dissecting the genetic foundation and regulatory mechanisms in embryonic development requires genomic background knowledge. Therefore, we carried out a transcriptome sequencing on Sepia embryos and larvae via mRNA-Seq. 32,597,241 raw reads were filtered and assembled into 98,615 unigenes (N50 length at 911 bp) which were annotated in NR database, GO and KEGG databases respectively. Digital gene expression analysis was carried out on cleavage stage embryos, healthy larvae and malformed larvae. Unigenes functioning in cell proliferation exhibited higher transcriptional levels at cleavage stage while those related to animal disease and organ development showed increased transcription in malformed larvae. Homologs of key genes in regulatory pathways related to early development of animals were identified in Sepia. Most of them exhibit higher transcriptional levels in cleavage stage than larvae, suggesting their potential roles in embryonic development of Sepia. The de novo assembly of Sepia transcriptome is fundamental genetic background for further exploration in Sepia research. Our demonstration on the transcriptional variations of genes in three developmental stages will provide new perspectives in understanding the molecular mechanisms in early embryonic development of cuttlefish.
机译:金乌贼乌贼属Hoyle是一种经济上重要的头足类物种。然而,由于异常的胚胎发育,目前的人工孵化受到幼虫低存活率的挑战。解剖胚胎发育的遗传基础和调控机制需要基因组背景知识。因此,我们通过mRNA-Seq对棕褐色的胚胎和幼虫进行了转录组测序。过滤32,597,241个原始读取并将其组装成98,615个单基因(N50长度为911 bp),分别在NR数据库,GO和KEGG数据库中进行注释。对卵裂期胚胎,健康幼虫和畸形幼虫进行数字基因表达分析。在细胞增殖中发挥作用的单基因在卵裂期表现出较高的转录水平,而与动物疾病和器官发育有关的单基因在畸形幼虫中表现出更高的转录水平。在棕褐色中鉴定了与动物早期发育有关的调控途径中关键基因的同源物。他们中的大多数在卵裂期显示出比幼虫更高的转录水平,表明它们在棕褐色的胚胎发育中具有潜在的作用。棕褐色转录组的从头装配是棕褐色研究中进一步探索的基本遗传背景。我们对基因在三个发育阶段的转录变异的论证将为理解墨鱼早期胚胎发育的分子机制提供新的观点。

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