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马氏珠母贝发育特征:贝壳形成、附着和变态相关关键分子事件的研究进展。

Developmental characteristics of pearl oyster Pinctada fucata martensii: insight into key molecular events related to shell formation, settlement and metamorphosis.

机构信息

Fishery College, Guangdong Ocean University, Zhanjiang, 524088, China.

Pearl Breeding and Processing Engineering Technology Research Center of Guangdong Province, Zhanjiang, 524088, China.

出版信息

BMC Genomics. 2019 Feb 8;20(1):122. doi: 10.1186/s12864-019-5505-8.

Abstract

BACKGROUND

Marine bivalves undergo complex development processes, such as shell morphology conversion and changes of anatomy and life habits. In this study, the transcriptomes of pearl oyster Pinctada fucata martensii and Pacific oyster Crassostrea gigas at different development stages were analyzed to determine the key molecular events related to shell formation, settlement and metamorphosis.

RESULT

According to the shell matrix proteome, biomineralization-related genes exhibited a consensus expression model with the critical stages of shell formation. Differential expression analysis of P. f. martensii, revealed the negative regulation and feedback of extracellular matrixs as well as growth factor pathways involved in shell formation of larvae, similar to that in C. gigas. Furthermore, neuroendocrine pathways in hormone receptors, neurotransmitters and neuropeptide receptors were involved in shell formation, settlement and metamorphosis.

CONCLUSION

Our research demonstrated the main clusters of regulation elements related to shell formation, settlement and metamorphosis. The regulation of shell formation and metamorphosis could be coupled forming the neuroendocrine-biomineralization crosstalk in metamorphosis. These findings could provide new insights into the regulation in bivalve development.

摘要

背景

海洋双壳贝类经历复杂的发育过程,如贝壳形态转换以及解剖结构和生活习性的变化。在这项研究中,分析了珍珠贝 Pinctada fucata martensii 和太平洋牡蛎 Crassostrea gigas 在不同发育阶段的转录组,以确定与贝壳形成、附着和变态相关的关键分子事件。

结果

根据贝壳基质蛋白质组学,生物矿化相关基因表现出与贝壳形成关键阶段一致的表达模式。P. f. martensii 的差异表达分析表明,细胞外基质的负调控和反馈以及生长因子通路参与幼虫贝壳形成,与 C. gigas 相似。此外,激素受体、神经递质和神经肽受体中的神经内分泌途径参与贝壳形成、附着和变态。

结论

我们的研究表明,贝壳形成、附着和变态相关的主要调控元件簇。贝壳形成和变态的调控可以通过变态中的神经内分泌-生物矿化串扰偶联。这些发现为双壳类动物发育的调控提供了新的见解。

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