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物理现象控制软体动物珍珠层中矿物形态的形成。

Physical Phenomena Governing Mineral Morphogenesis in Molluscan Nacre.

机构信息

Laboratory of Advanced Structural Studies, Institute for Solid State Physics and Optics, Wigner Research Centre for Physics, P. O. Box 49, Budapest, H-1525, Hungary.

Brunel Centre of Advanced Solidification Technology, Brunel University, Uxbridge, Middlesex, UB8 3PH, UK.

出版信息

Small. 2024 Feb;20(5):e2304183. doi: 10.1002/smll.202304183. Epub 2023 Sep 27.

Abstract

Mollusks, as well as many other living organisms, have the ability to shape mineral crystals into unconventional morphologies and to assemble them into complex functional mineral-organic structures, an observation that inspired tremendous research efforts in scientific and technological domains. Despite these, a biochemical toolkit that accounts for the formation of the vast variety of the observed mineral morphologies cannot be identified yet. Herein, phase-field modeling of molluscan nacre formation, an intensively studied biomineralization process, is used to identify key physical parameters that govern mineral morphogenesis. Manipulating such parameters, various nacre properties ranging from the morphology of a single mineral building block to that of the entire nacreous assembly are reproduced. The results support the hypothesis that the control over mineral morphogenesis in mineralized tissues happens via regulating the physico-chemical environment, in which biomineralization occurs: the organic content manipulates the geometric and thermodynamic boundary conditions, which in turn, determine the process of growth and the form of the biomineral phase. The approach developed here has the potential of providing explicit guidelines for the morphogenetic control of synthetically formed composite materials.

摘要

软体动物以及许多其他生物都具有将矿物晶体塑造成非常规形态并将它们组装成复杂功能的矿物-有机结构的能力,这一观察结果激发了科学界和技术领域的大量研究工作。尽管如此,目前仍无法确定解释这些观察到的各种矿物形态形成的生化工具包。在此,通过相场模拟软体动物珍珠层的形成过程(这是一个被深入研究的生物矿化过程),来确定控制矿物形态发生的关键物理参数。通过操纵这些参数,可以再现从单个矿物构建块的形态到整个珍珠层组装的各种珍珠层特性。研究结果支持了这样一种假设,即在矿化组织中控制矿物形态发生是通过调节生物矿化发生的物理化学环境来实现的:有机含量调节几何和热力学边界条件,而这反过来又决定了生物矿物相的生长过程和形态。这里开发的方法有可能为合成复合材料的形态发生控制提供明确的指导。

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