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Hemocytes participate in calcium carbonate crystal formation, transportation and shell regeneration in the pearl oyster Pinctada fucata

机译:血细胞参与珍珠贝Pinctada fucata中碳酸钙晶体的形成,运输和壳再生

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In this study, light microscope, scanning and transmission electron microscope, hematoxylin-eosin and fluorescent staining, and mass spectrometry methods were employed to observe the calcium carbonate (CaCO3) crystal formation, hemocyte release and transportation, and hemocyte distribution at the shell regeneration area and to analyse the proteome of hemocytes in the pearl oyster, Pinctada fucata. The results indicated that intracellular CaCO3 crystals were observed in circulating hemocytes in P. fucata, implying that there was a suitable microenvironment for crystal formation in the hemocytes. This conclusion was further supported by the proteome analysis, in which various biomineralization-related proteins were detected. The crystal-bearing hemocytes, mainly granulocytes, may be released to extrapallial fluid (EPF) by the secretory cavities distributed on the outer surface of the mantle centre. These granulocytes in the EPF and between the regenerated shells were abundant and free. In the regenerated prismatic layer, the granulocytes were fused into each column and fragmented with the duration of shell maturation, suggesting the direct involvement of hemocytes in shell regeneration. Overall, this study provided evidence that hemocytes participated in CaCO3 crystal formation, transportation and shell regeneration in the pearl oyster. These results are helpful to further understand the exact mechanism of hemocyte-mediated biomineralization in shelled molluscs. (C) 2016 Elsevier Ltd. All rights reserved.
机译:在这项研究中,使用光学显微镜,扫描和透射电子显微镜,苏木精-曙红和荧光染色以及质谱法来观察碳酸钙(CaCO3)晶体的形成,血细胞的释放和运输以及壳再生区域的血细胞分布。并分析珍珠牡蛎Pinctada fucata中血细胞的蛋白质组。结果表明,在P. fucata的循环血细胞中观察到了胞内CaCO3晶体,这表明在血细胞中有合适的微环境形成晶体。蛋白质组学分析进一步支持了这一结论,其中检测了多种生物矿化相关蛋白。带有晶体的血细胞,主要是粒细胞,可以通过分布在地幔中心外表面的分泌腔释放到腹外液(EPF)中。 EPF中和再生壳之间的这些粒细胞丰富且游离。在再生的棱柱层中,粒细胞被融合到每列中,并随着壳成熟的持续时间而破碎,这表明血细胞直接参与壳再生。总体而言,这项研究提供了证据,表明血细胞参与了珍珠牡蛎中的CaCO3晶体形成,运输和壳再生。这些结果有助于进一步了解带壳软体动物中血细胞介导的生物矿化的确切机制。 (C)2016 Elsevier Ltd.保留所有权利。

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