Literature DB >> 22814943

3D characterization of pores in the cortical bone of human femur in the elderly at different locations as determined by synchrotron micro-computed tomography images.

C Chappard1, S Bensalah, C Olivier, P J Gouttenoire, A Marchadier, C Benhamou, F Peyrin.   

Abstract

UNLABELLED: Diaphysis, inferior, and lateral superior regions of the femoral neck are subjected to diverse mechanical loads. Using micro-CT based on synchrotron radiation, three-dimensional morphology and connectivity of the pore network are location dependent, underlying different remodeling mechanisms.
INTRODUCTION: The three-dimensional (3D) morphology and connectivity of the pore network at various locations in human femurs subjected to diverse mechanical loads were assessed using micro-CT based on synchrotron radiation.
METHODS: The cortex from 20 human femurs (mean age, 78.3 ± 12.4 years) was taken from the diaphysis (D), the inferior (IN), and the lateral superior (LS) regions of the femoral neck. The voxel size of the 3D reconstructed image was 7.5 μm. Cortical thickness and pore volume/tissue volume (Po.V/TV), pore diameter (Po.Dm) and spacing (Po.Sp) were determined. The pore surface/pore volume ratio (Po.S/Po.V), the number of pores (Po.N), the degrees of anisotropy (DA), and the connectivity density (ConnD), the degree of mineralization (DMB) were also determined.
RESULTS: The characteristics of the pore network in femoral cortical bone were found to be location dependent. There was greater porosity, Po.Dm, and Po.N, and more large (180-270 μm), extra-large (270-360 μm) and giant pores (>360 μm) in the LS compared to the IN and D. The difference in porosity in between the periosteal and endosteal layers was mostly due to an increase of Po.Dm rather than Po.N. There was a lower DMB of bone in the LS, which is consistent with a higher remodeling rate.
CONCLUSION: The results provide evidence for large variations in the structure of the internal pore network in cortical bone. These variations could involve different underlying remodeling mechanisms.

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Year:  2012        PMID: 22814943     DOI: 10.1007/s00198-012-2044-4

Source DB:  PubMed          Journal:  Osteoporos Int        ISSN: 0937-941X            Impact factor:   4.507


  37 in total

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3.  Comparison of microcomputed tomographic and microradiographic measurements of cortical bone porosity.

Authors:  D M L Cooper; J R Matyas; M A Katzenberg; B Hallgrimsson
Journal:  Calcif Tissue Int       Date:  2004-02-17       Impact factor: 4.333

4.  Visualization of 3D osteon morphology by synchrotron radiation micro-CT.

Authors:  D M L Cooper; B Erickson; A G Peele; K Hannah; C D L Thomas; J G Clement
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5.  Stiffness of compact bone: effects of porosity and density.

Authors:  M B Schaffler; D B Burr
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6.  Relation between age, femoral neck cortical stability, and hip fracture risk.

Authors:  Paul M Mayhew; C David Thomas; John G Clement; Nigel Loveridge; Thomas J Beck; William Bonfield; Chris J Burgoyne; Jonathan Reeve
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7.  Age-related changes in the tensile properties of cortical bone. The relative importance of changes in porosity, mineralization, and microstructure.

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9.  Regional differences in cortical porosity in the fractured femoral neck.

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Authors:  David Cooper; Andrei Turinsky; Christoph Sensen; Benedikt Hallgrimsson
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  21 in total

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2.  Homogenization of cortical bone reveals that the organization and shape of pores marginally affect elasticity.

Authors:  Xiran Cai; Renald Brenner; Laura Peralta; Cécile Olivier; Pierre-Jean Gouttenoire; Christine Chappard; Françoise Peyrin; Didier Cassereau; Pascal Laugier; Quentin Grimal
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3.  Histomorphometric and osteocytic characteristics of cortical bone in male subtrochanteric femoral shaft.

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4.  Development of new criteria for cortical bone histomorphometry in femoral neck: intra- and inter-observer reproducibility.

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5.  Customized, degradable, functionally graded scaffold for potential treatment of early stage osteonecrosis of the femoral head.

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Review 6.  Bone three-dimensional microstructural features of the common osteoporotic fracture sites.

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Journal:  World J Orthop       Date:  2014-09-18

Review 7.  The clinical contribution of cortical porosity to fragility fractures.

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9.  MRI-derived bound and pore water concentrations as predictors of fracture resistance.

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10.  Cortical porosity identifies women with osteopenia at increased risk for forearm fractures.

Authors:  Yohann Bala; Roger Zebaze; Ali Ghasem-Zadeh; Elizabeth J Atkinson; Sandra Iuliano; James M Peterson; Shreyasee Amin; Åshild Bjørnerem; L Joseph Melton; Helena Johansson; John A Kanis; Sundeep Khosla; Ego Seeman
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