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Bacteriophage Bundles with Pre-Aligned Ca Initiate the Oriented Nucleation and Growth of Hydroxylapatite

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Journal Chem Mater
Date 2010 Aug 31
PMID 20802794
Citations 36
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Abstract

Inorganic ions may direct the self-assembly of biomacromolecules into nanostructures which can further be used as a reactant and matrix for nanomaterials synthesis and assembly. Here we use bone mineral and filamentous bacteriophage as a model to demonstrate this concept. Divalent calcium ions are found to trigger the electrostatic self-assembly of anionic nanofiber-like bacteriophages into bundle structures where calcium ions are pre-organized between bacteriophage nanofibers. The resultant Ca(2+)-bacteriophage bundles can be separated and purified from the aqueous solution. The nanostructures of the bundles are verified by zeta potential analysis, small angle x-ray scattering and transmission electron microscopy. Because of the transcription of the bacteriophage chiral surface to the periodic alignment of pre-loaded Ca(2+), the Ca(2+)-bacteriphage bundles can serve as both Ca sources and biotemplates to initiate the oriented nucleation and growth of nanocrystalline hydroxyapatite in phosphate solution or in simulated body fluid. This work provides new insights into biomineralization and represents a new approach to the fabrication of biomolecular-inorganic hybrid layered nanostructures.

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References
1.
Deshpande A, Beniash E . Bio-inspired Synthesis of Mineralized Collagen Fibrils. Cryst Growth Des. 2009; 8(8):3084-3090. PMC: 2721229. DOI: 10.1021/cg800252f. View

2.
Bauerlein E . Biomineralization of unicellular organisms: an unusual membrane biochemistry for the production of inorganic nano- and microstructures. Angew Chem Int Ed Engl. 2003; 42(6):614-41. DOI: 10.1002/anie.200390176. View

3.
Snead M . Amelogenin protein exhibits a modular design: implications for form and function. Connect Tissue Res. 2003; 44 Suppl 1:47-51. View

4.
Mann S, Hannington J, Williams R . Phospholipid vesicles as a model system for biomineralization. Nature. 2018; 324(6097):565-567. DOI: 10.1038/324565a0. View

5.
Filmon R, Grizon F, Basle M, Chappaard D . Effects of negatively charged groups (carboxymethyl) on the calcification of poly(2-hydroxyethyl methacrylate). Biomaterials. 2002; 23(14):3053-9. DOI: 10.1016/s0142-9612(02)00069-8. View