首页> 外文期刊>BMC Evolutionary Biology >The skeletome of the red coral Corallium rubrum indicates an independent evolution of biomineralization process in octocorals
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The skeletome of the red coral Corallium rubrum indicates an independent evolution of biomineralization process in octocorals

机译:红珊瑚珊瑚柱的骨骼表明八陶瓷中生物矿化过程的独立演变

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The process of calcium carbonate biomineralization has arisen multiple times during metazoan evolution. In the phylum Cnidaria, biomineralization has mostly been studied in the subclass Hexacorallia (i.e. stony corals) in comparison to the subclass Octocorallia (i.e. red corals); the two diverged approximately 600 million years ago. The precious Mediterranean red coral, Corallium rubrum, is an octocorallian species, which produces two distinct high-magnesium calcite biominerals, the axial skeleton and the sclerites. In order to gain insight into the red coral biomineralization process and cnidarian biomineralization evolution, we studied the protein repertoire forming the organic matrix (OM) of its two biominerals. We combined High-Resolution Mass Spectrometry and transcriptome analysis to study the OM composition of the axial skeleton and the sclerites. We identified a total of 102 OM proteins, 52 are found in the two red coral biominerals with scleritin being the most abundant protein in each fraction. Contrary to reef building corals, the red coral organic matrix possesses a large number of collagen-like proteins. Agrin-like glycoproteins and proteins with sugar-binding domains are also predominant. Twenty-seven and 23 proteins were uniquely assigned to the axial skeleton and the sclerites, respectively. The inferred regulatory function of these OM proteins suggests that the difference between the two biominerals is due to the modeling of the matrix network, rather than the presence of specific structural components. At least one OM component could have been horizontally transferred from prokaryotes early during Octocorallia evolution. Our results suggest that calcification of the red coral axial skeleton likely represents a secondary calcification of an ancestral gorgonian horny axis. In addition, the comparison with stony coral skeletomes highlighted the low proportion of similar proteins between the biomineral OMs of hexacorallian and octocorallian corals, suggesting an independent acquisition of calcification in anthozoans.
机译:在碳酸钙生物碳化钙的过程中已经多次在甲烷烷进化过程中产生了多次。在CNIDaria Phylum中,与亚类octocorallia(即红珊瑚)相比,生物丙酸在亚类Hexacorallia(即Stony Corals)中进行了研究;这两年前分歧了大约6亿。珍贵的地中海红珊瑚珊瑚擦葡萄球菌,是一种八陶瓷物种,其产生两种不同的高镁辅煤生物体,轴向骨架和硬质矿。为了深入了解红珊瑚生物蛋白化过程和中毒物生物茂化的进化,我们研究了形成其两种生物体的有机基质(OM)的蛋白质曲目。我们组合高分辨率质谱和转录组分析,研究轴向骨架和硬质矿的OM组成。我们鉴定了总共102个OM蛋白,在两种红珊瑚生物体中发现52个,其中硬质素是每个级分中最丰富的蛋白质。与Reef Building珊瑚相反,红珊瑚有机基质具有大量的胶原蛋白蛋白质。含有糖结合结构域的毒素样糖蛋白和蛋白质也是主要的。分别分配27和23个蛋白质分别分配给轴向骨架和硬质矿。这些OM蛋白的推断调节功能表明,两种生物体之间的差异是由于基质网络的建模,而不是特定结构部件的存在。至少一个OM组分可能已经在八辛织机进化期间从原核生水平转移。我们的研究结果表明,红珊瑚轴向骨架的钙化可能代表祖先杰尔顿角质轴的二级钙化。此外,与石珊瑚骨骼骨骼的比较突出了六世和八陶瓷珊瑚的生物纲的生物肿块之间相似蛋白比例的低比例,表明一个独立于Anthozoans的钙化。

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