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湿壳与干故事:生物矿物结构-功能背后的进化“牵强附会”故事。

Wet shells and dry tales: the evolutionary 'Just-So' stories behind the structure-function of biominerals.

机构信息

B CUBE - Center for Molecular Bioengineering, Technische Universität Dresden, Dresden, Germany.

Institut für Geologie, Mineralogie und Geophysik, Ruhr-Universität Bochum, Bochum, Germany.

出版信息

J R Soc Interface. 2022 Jun;19(191):20220336. doi: 10.1098/rsif.2022.0336. Epub 2022 Jun 15.

Abstract

The ability of evolution to shape organic form involves the interactions of multiple systems of constraints, including fabrication, phylogeny and function. The tendency to place function above everything else has characterized some of the historical biological literature as a series of 'Just-So' stories that provided untested explanations for individual features of an organism. A similar tendency occurs in biomaterials research, where features for which a mechanical function can be postulated are treated as an adaptation. Moreover, functional adaptation of an entire structure is often discussed based on the local characterization of specimens kept in conditions that are far from those in which they evolved. In this work, environmental- and frequency-dependent mechanical characterization of the shells of two cephalopods, and , is used to demonstrate the importance of multi-scale environmentally controlled characterization of biogenic materials. We uncover two mechanistically independent strategies to achieve deformable, stiff, strong and tough highly mineralized structures. These results are then used to critique interpretations of adaptation in the literature. By integrating the hierarchical nature of biological structures and the environment in which they exist, biomaterials testing can be a powerful tool for generating functional hypotheses that should be informed by how these structures are fabricated and their evolutionary history.

摘要

进化塑造有机形态的能力涉及到多个约束系统的相互作用,包括制造、系统发育和功能。将功能置于一切之上的倾向使得一些历史生物学文献成为一系列“牵强附会”的故事,为生物体的个别特征提供了未经检验的解释。在生物材料研究中也存在类似的倾向,其中那些可以假设机械功能的特征被视为一种适应。此外,整个结构的功能适应通常是基于在远离其进化环境的条件下保存的标本的局部特征来讨论的。在这项工作中,我们使用两种头足类动物(和)的壳的环境和频率相关的机械特性来证明对生物材料进行多尺度环境控制特性研究的重要性。我们揭示了两种机械上独立的策略,以实现可变形、刚性、坚固和坚韧的高度矿化结构。然后,我们将这些结果用于批判文献中对适应的解释。通过整合生物结构的层次性质及其所处的环境,生物材料测试可以成为生成功能假设的有力工具,这些假设应该通过这些结构的制造方式及其进化历史来告知。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d423/9198522/75813a95e2d4/rsif20220336f01.jpg

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