Molding mineral within microporous hydrogels by a polymer-induced liquid-precursor (PILP) process

被引:71
|
作者
Cheng, XG [1 ]
Gower, LB [1 ]
机构
[1] Univ Florida, Dept Mat Sci & Engn, Gainesville, FL 32611 USA
关键词
D O I
10.1021/bp050166+
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Natural biominerals often have exquisite morphologies, where the cells exercise a high degree of crystallographic control through secretion of biological macromolecules and regulation of ion transport. One important example is the sea urchin spine. It has recently been shown to be formed through deposition of a transient amorphous calcium carbonate (ACC) precursor phase that later transforms to single-crystal line calcite, ultimately forming an elaborate three-dimensional microporous calcium carbonate structure with interconnected pores. Macromolecules associated with the mineral phase are thought to play a key role in regulating this transformation. The work described here mimics this type of morphological control by "molding" an amorphous calcium carbonate precursor within a porous poly(2-hydroxyethyl methacrylate) (PHEMA) hydrogel that has been prepared as a negative replica from the void space of an urchin spine. Using an acidic biomimetic polymer as a process-directing agent, we show that polyaspartic acid induces amorphous calcium carbonate (ACC) nanoparticles, which have fluidic character and therefore are able to infiltrate the PHEMA hydrogel replica and coalesce into the convoluted morphology that replicates the original microporous structure of the sea urchin spine. By "molding" calcium carbonate into a complex morphology at room temperature, using a precursor process that is induced by a biomimetic acidic macromolecule, the PILP process is a useful in vitro model for examining different aspects of the amorphous-to-crystalline transformation process that is apparently used by a variety of biomineralizing organisms. For example, although we were able to replicate the overall morphology of the spine, it had polycrystalline texture; further studies with this system will focus on controlling the nucleation event, which may help to elucidate how such a convoluted structure can be prepared with single-crystalline texture via an amorphous precursor. Through a better understanding of the mechanisms used by organisms to regulate crystal properties, such biomimetic processes can lead to the synthesis of materials with superior electronic, mechanical, and optical properties.
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页码:141 / 149
页数:9
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共 28 条
  • [1] Microcontact printing via a polymer-induced liquid-precursor (PILP) process
    Kim, YY
    Gower, LB
    [J]. BIOLOGICAL BIOMIMETIC MATERIALS-PROPERTIES TO FUNCTION, 2002, 724 : 201 - 206
  • [2] Deposition of calcium carbonate films by a polymer-induced liquid-precursor (PILP) process
    Gower, LB
    Odom, DJ
    [J]. JOURNAL OF CRYSTAL GROWTH, 2000, 210 (04) : 719 - 734
  • [3] Influence of fluoride on the mineralization of collagen via the polymer-induced liquid-precursor (PILP) process
    Saxena, Neha
    Cremer, Maegan A.
    Dolling, Evan S.
    Nurrohman, Hamid
    Habelitz, Stefan
    Marshall, Grayson W.
    Gower, Laurie B.
    [J]. DENTAL MATERIALS, 2018, 34 (09) : 1378 - 1390
  • [4] Oriented hydroxyapatite in turkey tendon mineralized via the polymer-induced liquid-precursor (PILP) process
    Jee, Sang Soo
    Kasinath, Rajendra Kumar
    DiMasi, Elaine
    Kim, Yi-Yeoun
    Gower, Laurie
    [J]. CRYSTENGCOMM, 2011, 13 (06): : 2077 - 2083
  • [5] Polymer-Induced Liquid-Precursor (PILP) Process in the Non-Calcium Based Systems of Barium and Strontium Carbonate
    Homeijer, Sara J.
    Barrett, Richard A.
    Gower, Laurie B.
    [J]. CRYSTAL GROWTH & DESIGN, 2010, 10 (03) : 1040 - 1052
  • [6] Biomimetic synthesis of calcite films by a polymer-induced liquid-precursor (PILP) process 1. Influence and incorporation of magnesium
    Cheng, Xingguo
    Varona, Philip L.
    Olszta, Matthew J.
    Gower, Laurie B.
    [J]. JOURNAL OF CRYSTAL GROWTH, 2007, 307 (02) : 395 - 404
  • [7] Scanning Electron Microscopic Analysis of the Mineralization of Type I Collagen via a Polymer-Induced Liquid-Precursor (PILP) Process
    M. J. Olszta
    E. P. Douglas
    L. B. Gower
    [J]. Calcified Tissue International, 2003, 72 : 583 - 591
  • [8] Compositional analysis of a polymer-induced liquid-precursor (PILP) amorphous CaCO3 phase
    Dai, Lijun
    Douglas, Elliot P.
    Gower, Laurie B.
    [J]. JOURNAL OF NON-CRYSTALLINE SOLIDS, 2008, 354 (17) : 1845 - 1854
  • [9] Scanning electron microscopic analysis of the mineralization of type I collagen via a polymer-induced liquid-precursor (PILP) process
    Olszta, MJ
    Douglas, EP
    Gower, LB
    [J]. CALCIFIED TISSUE INTERNATIONAL, 2003, 72 (05) : 583 - 591
  • [10] Functional Remineralization of Dentin Lesions Using Polymer-Induced Liquid-Precursor Process
    Burwell, Anora K.
    Thula-Mata, Taili
    Gower, Laurie B.
    Habeliz, Stefan
    Kurylo, Michael
    Ho, Sunita P.
    Chien, Yung-Ching
    Cheng, Jing
    Cheng, Nancy F.
    Gansky, Stuart A.
    Marshall, Sally J.
    Marshall, Grayson W.
    [J]. PLOS ONE, 2012, 7 (06):