Literature DB >> 2364326

Resolution-enhanced Fourier transform infrared spectroscopy study of the environment of phosphate ions in the early deposits of a solid phase of calcium-phosphate in bone and enamel, and their evolution with age. I: Investigations in the upsilon 4 PO4 domain.

C Rey1, M Shimizu, B Collins, M J Glimcher.   

Abstract

In order to investigate the possible existence in biological and poorly crystalline synthetic apatites of local atomic organizations different from that of apatite, resolution-enhanced, Fourier transform infrared spectroscopy studies were carried out on chicken bone, pig enamel, and poorly crystalline synthetic apatites containing carbonate and HPO4(2-) groups. The spectra obtained were compared to those of synthetic well crystallized apatites (stoichiometric hydroxyapatite, HPO4(2-)-containing apatite, type B carbonate apatite) and nonapatitic calcium phosphates which have been suggested as precursors of the apatitic phase [octacalcium phosphate (OCP), brushite, and beta tricalcium phosphate and whitlockite]. The spectra of bone and enamel, as well as poorly crystalline, synthetic apatite in the upsilon 4 PO4 domain, exhibit, in addition to the three apatitic bands, three absorption bands that were shown to be independent of the organic matrix. Two low-wave number bands at 520-530 and 540-550 cm-1 are assigned to HPO4(2-). Reference to known calcium phosphates shows that bands in this domain also exist in HPO4(2-)-containing apatite, brushite, and OCP. However, the lack of specific absorption bands prevents a clear identification of these HPO4(2-) environments. The third absorption band (610-615 cm-1) is not related to HPO4(2-) or OH- ions. It appears to be due to a labile PO4(3-) environment which could not be identified with any phosphate environment existing in our reference samples, and thus seems specific of poorly crystalline apatites. Correlation of the variations in band intensities show that 610-615 cm-1 band is related to an absorption band at 560 cm-1 superimposed on an apatite band. All the nonapatitic phosphate environments were shown to decrease during aging of enamel, bone, and synthetic apatites. Moreover, EDTA etching show that the labile PO4(3-) environment exhibited a heterogeneous distribution in the insoluble precipitate.

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Year:  1990        PMID: 2364326     DOI: 10.1007/bf02554969

Source DB:  PubMed          Journal:  Calcif Tissue Int        ISSN: 0171-967X            Impact factor:   4.333


  22 in total

1.  Mineralization in the chick embryo. I. Monohydrogen phosphate and carbonate relationships during maturation of the bone crystal complex.

Authors:  E D Pellegrino; R M Biltz
Journal:  Calcif Tissue Res       Date:  1972

2.  A chemical study of apatites prepared by hydrolysis of amorphous calcium phosphates in carbonate-containing aqueous solutions.

Authors:  D J Greenfield; J D Termine; E D Eanes
Journal:  Calcif Tissue Res       Date:  1974

3.  Hydrazine-deproteinated bone mineral. Physical and chemical properties.

Authors:  J D Termine; E D Eanes; D J Greenfield; M U Nylen; R A Harper
Journal:  Calcif Tissue Res       Date:  1973

4.  Hydroxyapatite formation from a hydrated calcium monohydrogen phosphate precursor.

Authors:  M D Francis; N C Webb
Journal:  Calcif Tissue Res       Date:  1971

5.  Amorphous calcium phosphatase in skeletal tissues.

Authors:  E D Eanes; J D Termine; A S Posner
Journal:  Clin Orthop Relat Res       Date:  1967 Jul-Aug       Impact factor: 4.176

6.  X-ray diffraction studies of the crystallinity of bone mineral in newly synthesized and density fractionated bone.

Authors:  L C Bonar; A H Roufosse; W K Sabine; M D Grynpas; M J Glimcher
Journal:  Calcif Tissue Int       Date:  1983       Impact factor: 4.333

7.  Diffuse X-ray scattering from apatite crystals and its relation to amorphous bone mineral.

Authors:  T Aoba; Y Moriwaki; Y Doi; M Okazaki; J Takahashi; T Yagi
Journal:  J Osaka Univ Dent Sch       Date:  1980-12

8.  Studies on porcine enamel proteins: a possible original enamel protein.

Authors:  M Fukae; T Tanabe; H Ijiri; M Shimizu
Journal:  Tsurumi Shigaku       Date:  1980-12

9.  Crystal growth of bone mineral.

Authors:  W E Brown
Journal:  Clin Orthop Relat Res       Date:  1966 Jan-Feb       Impact factor: 4.176

10.  Formation and transformation of octacalcium phosphate, OCP: a preliminary report.

Authors:  R Z LeGeros; R Kijkowska; J P LeGeros
Journal:  Scan Electron Microsc       Date:  1984
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  31 in total

1.  Mineralization of regenerated cellulose hydrogels.

Authors:  P L Granja; C C Ribeiro; B De Jéso; C Baquey; M A Barbosa
Journal:  J Mater Sci Mater Med       Date:  2001-09       Impact factor: 3.896

2.  Evaluation of the effect of three calcium phosphate powders on osteoblast cells.

Authors:  V Midy; M Dard; E Hollande
Journal:  J Mater Sci Mater Med       Date:  2001-03       Impact factor: 3.896

3.  Effect of hydrazine based deproteination protocol on bone mineral crystal structure.

Authors:  I A Karampas; M G Orkoula; C G Kontoyannis
Journal:  J Mater Sci Mater Med       Date:  2012-03-03       Impact factor: 3.896

4.  Novel infrared spectroscopic method for the determination of crystallinity of hydroxyapatite minerals.

Authors:  N Pleshko; A Boskey; R Mendelsohn
Journal:  Biophys J       Date:  1991-10       Impact factor: 4.033

Review 5.  FT-IR imaging of native and tissue-engineered bone and cartilage.

Authors:  Adele Boskey; Nancy Pleshko Camacho
Journal:  Biomaterials       Date:  2006-12-18       Impact factor: 12.479

6.  Lattice energy and mechanical stiffness of hydroxyapatite.

Authors:  Dajun Zhang; Ashok Tamilselvan
Journal:  J Mater Sci Mater Med       Date:  2007-01       Impact factor: 3.896

7.  Bone fragment or bone powder? ATR-FTIR spectroscopy-based comparison of chemical composition and DNA preservation of bones after 10 years in a freezer.

Authors:  Irena Zupanič Pajnič; Tamara Leskovar; Ivan Jerman
Journal:  Int J Legal Med       Date:  2021-05-24       Impact factor: 2.686

8.  Fourier transform infrared spectroscopic imaging parameters describing acid phosphate substitution in biologic hydroxyapatite.

Authors:  Lyudmila Spevak; Carol R Flach; Tracey Hunter; Richard Mendelsohn; Adele Boskey
Journal:  Calcif Tissue Int       Date:  2013-02-05       Impact factor: 4.333

9.  Biomimetic apatite-based biomaterials: on the critical impact of synthesis and post-synthesis parameters.

Authors:  Nicolas Vandecandelaere; Christian Rey; Christophe Drouet
Journal:  J Mater Sci Mater Med       Date:  2012-07-17       Impact factor: 3.896

10.  FT-IR photoacoustic depth profiling spectroscopy of enamel.

Authors:  M G Sowa; H H Mantsch
Journal:  Calcif Tissue Int       Date:  1994-06       Impact factor: 4.333

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