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一种新型基质蛋白 PNU5 促进无定形碳酸钙向方解石和文石的转化。

A novel matrix protein PNU5 facilitates the transformation from amorphous calcium carbonate to calcite and aragonite.

机构信息

Ministry of Education Key Laboratory of Protein Sciences, School of Life Sciences, Tsinghua University, Beijing 100084, China.

State Key Laboratory of Membrane Biology, Beijing Advanced Innovation Center for Structural Biology, School of Life Sciences, Tsinghua University, Beijing 100084, China.

出版信息

Int J Biol Macromol. 2023 Jan 1;224:754-765. doi: 10.1016/j.ijbiomac.2022.10.163. Epub 2022 Oct 27.

Abstract

For both nacre formation and biomineralization in mollusks, understanding the molecular mechanism is imperative. Biomineralization, especially shell formation, is dedicatedly regulated by multiple matrix proteins. However, ACC conversion to stable crystals still lacks positive factors. In this research, we found a novel matrix protein named PNU5 in Pinctada fucata that plays a regulatory role in both prismatic layer and nacreous layer formation. Functional studies in vivo and in vitro have shown that it might be involved in shell formation in a positive manner. RT-qPCR analysis showed that pnu5 was highly expressed in mantle pallial and participated in shell repairing and regeneration. RNAi-mediated repression of pnu5 could affect the normal structure of prismatic layer and nacreous layer. The recombinant protein rPNU5 significantly enhanced the precipitation rate of CaCO both in the calcite and aragonite crystallization systems, as well as altering the morphology of the crystals. Based on ACC transition experiments, the recombinant protein rPNU5 facilitated amorphous calcium carbonate (ACC) transformation into stable calcite or aragonite. This study could provide us with a better understanding of how positive regulatory mechanisms contribute to biomineralization.

摘要

对于贝类的珍珠层形成和生物矿化,理解其分子机制至关重要。生物矿化,特别是贝壳的形成,受到多种基质蛋白的专门调节。然而,ACC 向稳定晶体的转化仍缺乏积极因素。在这项研究中,我们在菲律宾蛤仔中发现了一种名为 PNU5 的新型基质蛋白,它在棱柱层和珍珠层的形成中发挥着调节作用。体内和体外的功能研究表明,它可能以积极的方式参与贝壳的形成。RT-qPCR 分析显示,pnu5 在套膜边缘组织中高度表达,并参与贝壳的修复和再生。RNAi 介导的 pnu5 抑制会影响棱柱层和珍珠层的正常结构。重组蛋白 rPNU5 显著提高了方解石和文石结晶体系中 CaCO 的沉淀速率,并改变了晶体的形态。基于 ACC 转变实验,重组蛋白 rPNU5 促进了无定形碳酸钙(ACC)向稳定的方解石或文石的转化。这项研究可以让我们更好地理解积极的调控机制如何促进生物矿化。

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