Design strategies of sea urchin teeth: Structure, composition and micromechanical relations to function

被引:156
作者
Wang, RZ [1 ]
Addadi, L [1 ]
Weiner, S [1 ]
机构
[1] WEIZMANN INST SCI, DEPT BIOL STRUCT, IL-76100 REHOVOT, ISRAEL
关键词
D O I
10.1098/rstb.1997.0034
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
The teeth of sea urchins comprise a variety of different structural entities, all of which are composed of magnesium-bearing calcite together with a small amount of organic material. The teeth are worn down continuously, but in such a way that they remain sharp and functional. Here we describe aspects of the structural, compositional and micromechanical properties of the teeth of Paracentrolus lividus using scanning electron microscopy, infrared spectrometry, atomic absorption, X-ray diffraction and microindentation. The S-shaped single crystalline calcitic fibres are one of the main structural elements of the tooth. They extend from the stone part to the keel. The diameter of the fibres increases gradually from less than 1 mu m at the stone tip to about 20 mu m at the keel end, while their MgCO3 contents decrease from about 13 mol% to about 4.5 mol%. Each fibre is coated by a thin organic sheath and surrounded by polycrystalline calcitic discs containing as much as 35 mol% MgCO3. This structure constitutes a unique kind of gradient fibre-reinforced ceramic matrix composite, whose microhardness and toughness decrease gradually from the stone part to the keel. Primary places are also important structural elements of the tooth. Each primary plate has a very unusual sandwich-like structure with a calcitic envelope surrounding a thin apparently amorphous CaCO3 layer. This central layer, together with the primary plate/disc interface, improves the toughness of this zone by stopping. and blunting cracks. The self-sharpening function of the teeth is believed to result from the combination of the geometrical shape of the main structural elements and their spatial arrangement, the interfacial strength between structural elements, and the hardness gradient extending from the working stone :part to the surrounding zones. The sea urchin tooth structure possesses an array of interesting functional design features, some of which may possibly be applicable to materials science.
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页码:469 / 480
页数:12
相关论文
共 40 条
[1]   CONTROL AND DESIGN PRINCIPLES IN BIOLOGICAL MINERALIZATION [J].
ADDADI, L ;
WEINER, S .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 1992, 31 (02) :153-169
[2]   Stabilization of amorphous calcium carbonate by specialized macromolecules in biological and synthetic precipitates [J].
Aizenberg, J ;
Lambert, G ;
Addadi, L ;
Weiner, S .
ADVANCED MATERIALS, 1996, 8 (03) :222-&
[3]  
Barnes RD, 1987, INVERTEBRATE ZOOLOGY
[4]   Amorphous calcium carbonate transforms into calcite during sea urchin larval spicule growth [J].
Beniash, E ;
Aizenberg, J ;
Addadi, L ;
Weiner, S .
PROCEEDINGS OF THE ROYAL SOCIETY B-BIOLOGICAL SCIENCES, 1997, 264 (1380) :461-465
[5]   BIOLOGICAL-CONTROL OF CRYSTAL TEXTURE - A WIDESPREAD STRATEGY FOR ADAPTING CRYSTAL PROPERTIES TO FUNCTION [J].
BERMAN, A ;
HANSON, J ;
LEISEROWITZ, L ;
KOETZLE, TF ;
WEINER, S ;
ADDADI, L .
SCIENCE, 1993, 259 (5096) :776-779
[6]   STRUCTURE OF A SEA-URCHIN TOOTH [J].
BREAR, K ;
CURREY, JD .
JOURNAL OF MATERIALS SCIENCE, 1976, 11 (10) :1977-1978
[7]   A SOLID SOLUTION BETWEEN CALCITE AND DOLOMITE [J].
CHAVE, KE .
JOURNAL OF GEOLOGY, 1952, 60 (02) :190-192
[8]   THE ULTRASTRUCTURE OF THE PLUMULA OF THE TOOTH OF LYTECHINUS-VARIEGATUS (ECHINODERMATA, ECHINOIDEA) [J].
CHEN, CP ;
LAWRENCE, JM .
ACTA ZOOLOGICA, 1986, 67 (01) :33-41
[9]   MECHANISM FOR CONTROL OF CRACK PROPAGATION IN ALL-BRITTLE SYSTEMS [J].
COOK, J ;
EVANS, CC ;
GORDON, JE ;
MARSH, DM .
PROCEEDINGS OF THE ROYAL SOCIETY OF LONDON SERIES A-MATHEMATICAL AND PHYSICAL SCIENCES, 1964, 282 (1390) :508-+
[10]  
Currey J.D., 1990, SKELETAL BIOMINERALI, V1, P11