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寻常海绵纲的Suberites domuncula中骨针形成的组织化学和电子显微镜分析。

Histochemical and electron microscopic analysis of spiculogenesis in the demosponge Suberites domuncula.

作者信息

Eckert Carsten, Schröder Heinz C, Brandt David, Perovic-Ottstadt Sanja, Müller Werner E G

机构信息

Museum für Naturkunde, Universität, Institut für Systematische Zoologie, Berlin, Germany.

出版信息

J Histochem Cytochem. 2006 Sep;54(9):1031-40. doi: 10.1369/jhc.5A6903.2006. Epub 2006 May 18.

DOI:10.1369/jhc.5A6903.2006
PMID:16709731
Abstract

The skeleton of demosponges is built of spicules consisting of biosilica. Using the primmorph system from Suberites domuncula, we demonstrate that silicatein, the biosilica-synthesizing enzyme, and silicase, the catabolic enzyme, are colocalized at the surface of growing spicules as well as in the axial filament located in the axial canal. It is assumed that these two enzymes are responsible for the deposition of biosilica. In search of additional potential structural molecules that might guide the mineralization process during spiculogenesis to species-specific spicules, electron microscopic studies with antibodies against galectin and silicatein were performed. These studies showed that silicatein forms a complex with galectin; the strings/bundles of this complex are intimately associated with the surface of the spicules and arranged concentrically around them. Collagen fibers are near the silactein/galectin complexes. The strings/bundles formed from silicatein/galectin display a lower degree of orientation than the collagen fibers arranged in a highly ordered pattern around the spicules. These data indicate that species-specific formation of spicules involves a network of (diffusible) regulatory factor(s) controlling enzymatic silica deposition; this mineralization process proceeds on a galectin/collagen organic matrix.

摘要

寻常海绵纲海绵的骨骼由生物二氧化硅构成的骨针组成。利用来自多孔海绵(Suberites domuncula)的原细胞团系统,我们证明了生物二氧化硅合成酶硅酸蛋白和分解代谢酶硅酶共定位在生长中骨针的表面以及位于轴管内的轴丝中。据推测,这两种酶负责生物二氧化硅的沉积。为了寻找可能在骨针形成过程中引导矿化过程形成物种特异性骨针的其他潜在结构分子,我们用抗半乳糖凝集素和硅酸蛋白的抗体进行了电子显微镜研究。这些研究表明,硅酸蛋白与半乳糖凝集素形成复合物;该复合物的条带/束与骨针表面紧密相连,并围绕骨针呈同心圆排列。胶原纤维靠近硅酸蛋白/半乳糖凝集素复合物。由硅酸蛋白/半乳糖凝集素形成的条带/束的取向程度低于围绕骨针以高度有序模式排列的胶原纤维。这些数据表明,骨针的物种特异性形成涉及控制酶促二氧化硅沉积的(可扩散)调节因子网络;这种矿化过程在半乳糖凝集素/胶原有机基质上进行。

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