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Insights from the Shell Proteome: Biomineralization to Adaptation

机译:来自壳蛋白组的见解:从生物矿化到适应

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摘要

Bivalves have evolved a range of complex shell forming mechanisms that are reflected by their incredible diversity in shell mineralogy and microstructures. A suite of proteins exported to the shell matrix space plays a significant role in controlling these features, in addition to underpinning some of the physical properties of the shell itself. Although, there is a general consensus that a minimum basic protein tool kit is required for shell construction, to date, this remains undefined. In this study, the shell matrix proteins (SMPs) of four highly divergent bivalves (The Pacific oyster, Crassostrea gigas; the blue mussel, Mytilus edulis; the clam, Mya truncata, and the king scallop, Pecten maximus) were analyzed in an identical fashion using proteomics pipeline. This enabled us to identify the critical elements of a 鈥渂asic tool kit鈥?for calcification processes, which were conserved across the taxa irrespective of the shell morphology and arrangement of the crystal surfaces. In addition, protein domains controlling the crystal layers specific to aragonite and calcite were also identified. Intriguingly, a significant number of the identified SMPs contained domains related to immune functions. These were often are unique to each species implying their involvement not only in immunity, but also environmental adaptation. This suggests that the SMPs are selectively exported in a complex mix to endow the shell with both mechanical protection and biochemical defense.
机译:双壳类已经进化出一系列复杂的壳形成机制,这些机制反映在它们在壳矿物学和微观结构方面令人难以置信的多样性上。除了支撑壳本身的一些物理特性外,输出到壳基质空间的一系列蛋白质在控制这些特征方面也起着重要作用。尽管人们普遍认为壳体构建需要最低限度的基本蛋白质工具包,但迄今为止,这仍未确定。在这项研究中,使用蛋白质组学管道以相同的方式分析了四种高度分化的双壳类(太平洋牡蛎、Crassostrea gigas、蓝贻贝、Mytilus edulis、蛤蜊、Mya truncata 和大扇贝、Pecten maximus)的壳基质蛋白 (SMP)。这使我们能够识别钙化过程的鈥渂asic工具包的关键元素,无论壳的形态和晶体表面的排列如何,这些元素在整个分类群中都是保守的。此外,还鉴定了控制文石和方解石特异性晶体层的蛋白质结构域。有趣的是,大量已鉴定的SMP包含与免疫功能相关的结构域。这些通常是每个物种所独有的,这意味着它们不仅参与免疫,还参与环境适应。这表明SMPs在复杂的混合物中被选择性地输出,以赋予外壳机械保护和生化防御。

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