Macromolecules in mollusc shells and their functions in biomineralization

The Royal Society - Tập 304 Số 1121 - Trang 425-434 - 1984
Steve Weiner1, W. Traub2
1Isotope Department, The Weizmann Institute of Science, 76 100 Rehovot Israel
2Structural Chemistry Department, The Weizmann Institute of Science, 76 100 Rehovot, Israel

Tóm tắt

Mollusc shells are used as a model for studying ‘organic-matrix -mediated’ biomineralization, in which crystals are nucleated and grow in a pre-formed structural framework composed of proteins and polysaccharides. In particular, the possibility that the organic matrix functions as a template for crystal formation by epitaxial growth, is examined. In general, individual organic matrix sheets are composed of a thin layer of β-chitin sandwiched between layers of proteins adopting the antiparallel β-sheet conformation. The protein polypeptide chains are oriented perpendicular to the chitin fibrils. The matrix surfaces contain acidic proteins and polysaccharides. X -ray and electron diffraction patterns of matrices and mineral crystals from the nacreous layers of a bivalve, a gastropod and the cephalopod, Nautilus , show that the chitin fibres and the protein polypeptide chains are aligned with the a and b aragonite crystallographic axes, respectively. This strongly suggests that the mineral formed epitaxially upon the matrix surface. However, as the degree of orientation of the organic constituents is much less than the mineral constituents, it is postulated that the site of nucleation of the mineral crystals comprises only a small part of the matrix structure and is itself composed of well oriented macromolecules, probably acidic proteins. Two acidic proteins, which may constitute part of the nucleation site for calcite in a bivalve, were identified by comparing all the acidic proteins in the calcite layer with those in the aragonite layer. The two proteins were present in the calcite layer only, and in addition were found to have an aspartic-acid -containing amino acid sequence, not present in any of the other soluble matrix proteins. The concept of a matrix composed of a structural core coated with acidic macromolecules, some of which constitute a nucleation site, may well be applicable to other mineralized tissues.

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Tài liệu tham khảo

Bevelander G. & Nakahara H. 1980 Compartment and envelope formation in the process of biological mineralization. In The mechanisms ofbiomineralization in animals andplants (ed. M. Omori & N. Watabe) pp. 19-27. Tokyo: Tokai University Press.

Boggild O. B., 1930, The shell structure of the mollusks. K. danske, Vidensk. Selsk. Skr., 2, 231

Crenshaw M. A., 1972, The soluble matrix of Mercenaria mercenaria shell, Biomineral. Res. Rep., 6, 6

Crenshaw M. A. 1982 Mechanisms of normal biological mineralization of calcium carbonates. In Biological mineralization and demineralization (ed. G. H. Nancollas) pp. 243-257. Berlin & New York: Springer.

Crenshaw M. A., 1975, Histochemical and structural study of nautiloid septal nacre, Biomineral. Res. Rep., 8, 1

Digby P. S. B., 1968, The mechanism of calcification in the molluscan shell. Symp. zool, Soc. Lond., 22, 93

Glimcher M. J. 1981 On the form and function of bone: from molecules to organs. In The chemistry and biology of mineralized connective tissues (ed. A. Veis) pp. 617-673. New York & Amsterdam: Elsevier.

Goffinet G., 1979, Distribution et importance quantitative de la chitine dans les coquilles de mollusques, Cah. Biol. mar., 20, 341

10.1111/j.1469-185X.1967.tb01534.x

Gregoire Ch. 1972 Structure of the molluscan shell. In Chemical zoology (ed. M. Florkin & B. T. Scheer) vol. 7 pp. 45-102. New York: Academic Press.

Gregoire Ch., 1955, La trame protidique des nacres et des perles, Ann. Inst. Oceanogr. Monaco, 31, 1

Hare P. E., 1965, Amino acid composition of some calcified proteins, Carnegie Instn Wash. Yb., 64, 223

Hoare D. G., 1967, Method for the quantitative modification and estimation of carboxylic acid groups in proteins. J. biol, Chem., 242, 2447

Jeuniaux C. 1963 Chitine et chitinolyse.Paris: Masson.

Krampitz G. Drolshagen H. Hausle J. & Hof-Irmscher K. 1983 Organic matrices of mollusc shells. In Biomineralization and biological metal accumulation (ed. P. Westbroek & E. W. de Jong) pp. 231-247. Dordrecht: Reidel.

10.1016/S0010-8545(00)82054-8

Lowenstam H. A. 1981 Minerals formed by organisms. 211 1126-1131.

Lowenstam H. A. & Weiner S. 1983 Mineralization by organisms and the evolution of biomineralization. In Biomineralization and biological metal accumulation (ed. P. Westbroek & E. W. de Jong) pp. 191-203. Dordrecht: Reidel.

Mann S. Parker S. B. Perry C. C. Ross M. D. Skarnulis A. J. & Williams R. J. P. 1983 Problems in the understanding of biominerals. In Biomineralization and biological metal accumulation (ed. P. Westbroek & E. W. de Jong) pp. 171-183. Dordrecht: Reidel.

Meenakshi V. R., 1971, Amino acids of the organic matrix of neogastropod shells, Comp. Biochem. Physiol., 40, 1037

Nakahara H., 1979, An electron microscope study of the growing surface of nacre in two gastropod species, Turbo cornutus and Tegula pfeifferi, Venus. Kyoto, 38, 205

Nakahara H. 1983 Calcification of gastropod nacre. In Biomineralization and biological metal accumulation (ed. P. Westbroek & E. W. de Jong) pp. 225-230. Dordrecht: Reidel.

Nakahara H., 1982, Electron microscopic and amino acid studies on the outer and inner shell layers of Haliotis rufescens, Venus. Kyoto, 39, 167

Posner A. S. & Betts F. 1981 Molecular control of tissue mineralization. In Chemistry and biology of mineralized connective tissues (ed. A. Veis) pp. 257-266. New York & Amsterdam: Elsevier.

10.1016/0092-8674(81)90037-4

Veis A. Stetler-Stevenson W. Takagi Y. Sabsay B. & Fullerton R. 1981 The nature and localization of the phosphorylated proteins of mineralized dentin. In The chemistry and biology of mineralized connective tissues (ed. A. Veis) pp. 377-387. New York & Amsterdam: Elsevier.

Wainwright S. A. Biggs W. D. Currey J. D. & Gosline J. M. 1976 In Mechanical design in organisms ch. 5. New York: John Wiley & Sons.

10.1016/S0022-5320(65)80104-6

10.1007/BF02408072

10.1016/S0021-9673(00)82489-9

10.1021/bi00286a023

10.1126/science.1188379

10.1016/0014-5793(80)80817-9

Weiner S. & Traub W. 1981 Organic-matrix-mineral relationships in mollusk shell nacreous layers. In Structural aspects of recognition and assembly in biological macromolecules (ed. M. Balaban J. L. Sussman W. Traub & A. Yonath) pp. 467-482. Rehovot and Philadelphia: Balaban ISS.

Weiner S. Traub W. & Lowenstam H. A. 1983 a Organic matrix in calcified exoskeletons. In Biomineralization and biological metal accumulation (ed. P. Westbroek & E. W. de Jong) pp. 205-224. Dordrecht: Reidel.

10.1016/0141-8130(83)90055-7

10.1126/science.167.3924.1486

Worms D. & Weiner S. 1983 (In preparation.)