Literature DB >> 1818762

Resolution-enhanced Fourier transform infrared spectroscopy study of the environment of phosphate ion in the early deposits of a solid phase of calcium phosphate in bone and enamel and their evolution with age: 2. Investigations in the nu3PO4 domain.

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

Abstract

Resolution-enhanced Fourier Transform Infrared (FTIR) spectra of early mineral deposits in enamel and bone show bands at 1020, 1100, 1110, 1125, and 1145 cm-1 in the nu3PO4 domain which do not belong to well crystallized stoichiometric hydroxyapatite. Bands at 1020 and 1100 cm-1 have been shown to occur in nonstoichiometric apatites containing HPO4(2-) ions and the weak band at 1145 cm-1 has been assigned to HPO4(2-) ions. Though the bands at 1110 and 1125 cm-1 have not been found in any well crystallized apatite, they are present in newly precipitated apatite. These latter bands disappear progressively during maturation in biological as well as synthetic samples, and partial dissolution of synthetic apatites shows that they belong to species that exhibit an inhomogeneous distribution in the mineral, and that are the first to be solubilized. Comparison of the FTIR spectra of biological apatites with those of synthetic, nonapatitic-containing phosphate minerals shows that the presence of these bands does not arise from nonapatitic, well-defined phases; they are due to the local environment of phosphate ions which may possibly be loosely related or perhaps unrelated to the phosphate groups present in the well-crystallized nonapatitic calcium phosphates. Resolution-enhanced FTIR affords a very precise characterization of the mineral phases which may be very useful in characterizing pathological deposits of Ca-P mineral phases.

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Year:  1991        PMID: 1818762     DOI: 10.1007/BF02555847

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


  7 in total

1.  The carbonate environment in bone mineral: a resolution-enhanced Fourier Transform Infrared Spectroscopy Study.

Authors:  C Rey; B Collins; T Goehl; I R Dickson; M J Glimcher
Journal:  Calcif Tissue Int       Date:  1989-09       Impact factor: 4.333

2.  Infra-red spectra of hydroxyapatite, octacalcium phosphate and pyrolysed octacalcium phosphate.

Authors:  B O Fowler; E C Moreno; W E Brown
Journal:  Arch Oral Biol       Date:  1966-05       Impact factor: 2.633

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

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

4.  Structural studies of the mineral phase of calcifying cartilage.

Authors:  C Rey; K Beshah; R Griffin; M J Glimcher
Journal:  J Bone Miner Res       Date:  1991-05       Impact factor: 6.741

5.  Crystal growth of bone mineral.

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

6.  Amorphous/crystalline interrelationships in bone mineral.

Authors:  J D Termine; A S Posner
Journal:  Calcif Tissue Res       Date:  1967

7.  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.

Authors:  C Rey; M Shimizu; B Collins; M J Glimcher
Journal:  Calcif Tissue Int       Date:  1990-06       Impact factor: 4.333

  7 in total
  45 in total

Review 1.  Aging and bone.

Authors:  A L Boskey; R Coleman
Journal:  J Dent Res       Date:  2010-10-05       Impact factor: 6.116

2.  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

Review 3.  Infrared assessment of bone quality: a review.

Authors:  Eleftherios P Paschalis; Richard Mendelsohn; Adele L Boskey
Journal:  Clin Orthop Relat Res       Date:  2011-08       Impact factor: 4.176

4.  FTIR microspectroscopic analysis of human osteonal bone.

Authors:  E P Paschalis; E DiCarlo; F Betts; P Sherman; R Mendelsohn; A L Boskey
Journal:  Calcif Tissue Int       Date:  1996-12       Impact factor: 4.333

Review 5.  Mineral changes in osteoporosis: a review.

Authors:  Dan Faibish; Susan M Ott; Adele L Boskey
Journal:  Clin Orthop Relat Res       Date:  2006-02       Impact factor: 4.176

6.  Fourier transform infrared analysis and bone.

Authors:  E P Paschalis
Journal:  Osteoporos Int       Date:  2009-06       Impact factor: 4.507

7.  Fourier transform infrared microscopy of calcified turkey leg tendon.

Authors:  S J Gadaleta; N P Camacho; R Mendelsohn; A L Boskey
Journal:  Calcif Tissue Int       Date:  1996-01       Impact factor: 4.333

Review 8.  Vibrational spectroscopy and imaging: applications for tissue engineering.

Authors:  William Querido; Jessica M Falcon; Shital Kandel; Nancy Pleshko
Journal:  Analyst       Date:  2017-10-23       Impact factor: 4.616

9.  Effects of 3 years treatment with once-yearly zoledronic acid on the kinetics of bone matrix maturation in osteoporotic patients.

Authors:  S Gamsjaeger; B Hofstetter; E Zwettler; R Recker; J A Gasser; E F Eriksen; K Klaushofer; E P Paschalis
Journal:  Osteoporos Int       Date:  2012-11-15       Impact factor: 4.507

10.  Fourier transform infrared imaging microspectroscopy and tissue-level mechanical testing reveal intraspecies variation in mouse bone mineral and matrix composition.

Authors:  Hayden-William Courtland; Philip Nasser; Andrew B Goldstone; Lyudmila Spevak; Adele L Boskey; Karl J Jepsen
Journal:  Calcif Tissue Int       Date:  2008-10-15       Impact factor: 4.333

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