T. Destanque, J. Le Luyer, V. Quillien, M. Sham Koua, P. Auffrey, C.-L. Ky
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引用次数: 0
摘要
海洋双壳类动物的早期发育阶段是幼虫从浮游自由生活过渡到无梗成熟个体的关键时期。连续的变态过程需要关键基因的表达,而这些基因的功能可能受到很大的选择压力,因此了解幼虫的发育是基础研究和应用研究的关键知识。幼虫发育的表型已广为人知,但其潜在的分子机制,如相关基因的表达动态和分子交叉关系,对一些非模式物种(如玛格丽特)的描述仍然很少。我们设计了一项全转录组 RNA 序列分析,以描述 d 形、Veliger、Umbo 和 Eye-spot 四个幼虫发育阶段的基因表达动态。幼虫的基因表达与注释的功能大相径庭。代谢功能(与脂质、氨基酸和碳水化合物的使用有关的基因表达)在最初的发育阶段高度上调,从d形到umbo的需求不断增加。甲状腺激素和 Wnt 信号在一定程度上决定了形态发生和幼虫过渡。虽然幼虫的外壳显示出与成虫外壳相似的特征,但生物矿化初始化的原因却与成虫不同。本研究通过生物矿化、免疫系统和感官知觉过程的基因表达动态、分子机制和本体发育,全面概述了鲎幼虫阶段的过渡。
Substantial gene expression shifts during larval transitions in the pearl oyster Pinctada margaritifera
Early development stages in marine bivalve are critical periods where larvae transition from pelagic free-life to sessile mature individuals. The successive metamorphosis requires the expression of key genes, the functions of which might be under high selective pressure, hence understanding larval development represents key knowledge for both fundamental and applied research. Phenotypic larvae development is well known, but the underlying molecular mechanisms such as associated gene expression dynamic and molecular cross-talks remains poorly described for several nonmodel species, such as P. margaritifera. We designed a whole transcriptome RNA-sequencing analysis to describe such gene expression dynamics following four larval developmental stages:
d-shape, Veliger, Umbo and Eye-spot. Larval gene expression and annotated functions drastically diverge. Metabolic function (gene expression related to lipid, amino acid and carbohydrate use) is highly upregulated in the first development stages, with increasing demand from
d-shape to umbo. Morphogenesis and larval transition are partly ordered by Thyroid hormones and Wnt signaling. While larvae shells show some similar characteristic to adult shells, the cause of initialization of biomineralization differ from the one found in adults. The present study provides a global overview of Pinctada margaritifera larval stages transitioning through gene expression dynamics, molecular mechanisms and ontogeny of biomineralization, immune system, and sensory perception processes.
期刊介绍:
Developmental Evolution is a branch of evolutionary biology that integrates evidence and concepts from developmental biology, phylogenetics, comparative morphology, evolutionary genetics and increasingly also genomics, systems biology as well as synthetic biology to gain an understanding of the structure and evolution of organisms.
The Journal of Experimental Zoology -B: Molecular and Developmental Evolution provides a forum where these fields are invited to bring together their insights to further a synthetic understanding of evolution from the molecular through the organismic level. Contributions from all these branches of science are welcome to JEZB.
We particularly encourage submissions that apply the tools of genomics, as well as systems and synthetic biology to developmental evolution. At this time the impact of these emerging fields on developmental evolution has not been explored to its fullest extent and for this reason we are eager to foster the relationship of systems and synthetic biology with devo evo.