Literature DB >> 17621456

Phosphorus-31 spin-lattice NMR relaxation in bone apatite and its mineral standards.

Agnieszka Kaflak1, Waclaw Kolodziejski.   

Abstract

Phosphorus-31 spin-lattice relaxation, both in the laboratory (B(0)=4.7 T) and rotating frame (B(1)=2.2 mT), was studied in the following samples: mineral of whole human bone (samples B1-B6), apatite prepared from bone (BHA), natural brushite (BRU), synthetic hydroxyapatite hydrated (HAh) and calcined (HAc), and synthetic carbonatoapatite of type B (CHA-B) with 9 wt% of CO(3)(2-). The T(1)(P) relaxation time was determined directly using the saturation recovery technique, while the T(1 rho)(P) relaxation time was measured via (1)H-->(31)P CP by incrementing the (31)P spin-lock. In order to avoid an effect of magic-angle spinning (MAS) on CP and relaxation, the experiments were carried out on static samples. The (31)P spin-lattice relaxation was discussed for trabecular and cortical bone tissue from adult subjects in comparison to the synthetic mineral standards. None of the reference materials has matched accurately the relaxation behaviour of the bone mineral. The most striking differences between the examined substances were observed for T(1)(P), which for human bone was sample dependent and appeared in the range 55-100 s, while for HAh, HAc, and CHA-B was 7.2, 10.0, and 25.8 s, respectively. Possible reasons of so large relaxation diversity were discussed. It has been suggested that T(1)(P) of apatites is to some extent dependent on the concentration of the structural hydroxyl groups, and this in turn is controlled by the material crystallinity. It was also found that T(1)(P) decreased on hydration by ca. 30%. For T(1rho)(P), both its magnitude and dependence on the CP contact time gave useful structural information. The dehydrated samples (HAc and BHA) had long T(1 rho)(P) over 250 ms. Those, which contained water, either structural (BRU) or adsorbed on the crystal surface (HAh, CHA-B, and B1-B6), had shorter T(1 rho)(P) below 120 ms. It was concluded that the effect of water on T(1 rho)(P) is much more pronounced than on T(1)(P). The interpretation has involved P-OH groups and adsorbed water, which cover the apatite crystal surface.

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Year:  2007        PMID: 17621456     DOI: 10.1016/j.ssnmr.2007.04.005

Source DB:  PubMed          Journal:  Solid State Nucl Magn Reson        ISSN: 0926-2040            Impact factor:   2.293


  6 in total

1.  Unraveling Water-Mediated 31P Relaxation in Bone Mineral.

Authors:  Navneet Dwivedi; Richa Dubey; Seema Srivastava; Neeraj Sinha
Journal:  ACS Omega       Date:  2022-05-02

2.  31P NMR relaxation of cortical bone mineral at multiple magnetic field strengths and levels of demineralization.

Authors:  Alan C Seifert; Alexander C Wright; Suzanne L Wehrli; Henry H Ong; Cheng Li; Felix W Wehrli
Journal:  NMR Biomed       Date:  2013-03-18       Impact factor: 4.044

3.  Analyses of mineral specific surface area and hydroxyl substitution for intact bone.

Authors:  Amanda J Taylor; Elizabeth Rendina; Brenda J Smith; Donghua H Zhou
Journal:  Chem Phys Lett       Date:  2013-11-19       Impact factor: 2.328

4.  Solid-State P and H NMR Investigations of Amorphous and Crystalline Calcium Phosphates Grown Biomimetically From a Mesoporous Bioactive Glass.

Authors:  Renny Mathew; Philips N Gunawidjaja; Isabel Izquierdo-Barba; Kjell Jansson; Ana García; Daniel Arcos; María Vallet-Regí; Mattias Edén
Journal:  J Phys Chem C Nanomater Interfaces       Date:  2011-09-09       Impact factor: 4.126

5.  Solid-state MAS NMR, TEM, and TGA studies of structural hydroxyl groups and water in nanocrystalline apatites prepared by dry milling.

Authors:  Lukasz Pajchel; Waclaw Kolodziejski
Journal:  J Nanopart Res       Date:  2013-07-30       Impact factor: 2.253

6.  Total water, phosphorus relaxation and inter-atomic organic to inorganic interface are new determinants of trabecular bone integrity.

Authors:  Ratan Kumar Rai; Tarun Barbhuyan; Chandan Singh; Monika Mittal; Mohd Parvez Khan; Neeraj Sinha; Naibedya Chattopadhyay
Journal:  PLoS One       Date:  2013-12-30       Impact factor: 3.240

  6 in total

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