3D micro structural analysis of human cortical bone in paired femoral diaphysis, femoral neck and radial diaphysis.

J Struct Biol

Univ Lyon, CNRS, UMR 5220, Inserm U1206, INSA Lyon, Université Claude Bernard Lyon 1, CREATIS, F69621 Villeurbanne Cedex, France; European Synchrotron Radiation Facility, CS 40220, 38043, Grenoble Cedex 9, France. Electronic address:

Published: November 2018

AI Article Synopsis

  • Human bone adapts to its mechanical environment, leading to differences in architecture and microstructure between weight-bearing and non-weight-bearing bones.
  • This study used advanced imaging techniques to examine the three-dimensional structure of porosities in human cortical bone across different anatomical locations, focusing on femoral and radial bones.
  • Findings revealed significant microstructural differences, with the radius showing lower volume and smaller osteonal canals compared to the femur, suggesting that properties of femoral cortical bone cannot be universally applied to other bones.

Article Abstract

Human bone is known to adapt to its mechanical environment in a living body. Both its architecture and microstructure may differ between weight-bearing and non-weight-bearing bones. The aim of the current study was to analyze in three dimensions, the morphology of the multi-scale porosities on human cortical bone at different locations. Eight paired femoral diaphyses, femoral necks, and radial diaphyses were imaged using Synchrotron Radiation µCT with a 0.7 µm isotropic voxel size. The spatial resolution facilitates the investigation of the multiscale porosities of cortical bone, from the osteonal canals system down to the osteocyte lacunar system. Our results showed significant differences in the microstructural properties, regarding both osteonal canals and osteocytes lacunae, between the different anatomical locations. The radius presents significantly lower osteonal canal volume fraction and smaller osteonal canals than the femoral diaphysis or neck. Osteocytes lacunae observed in the radius are significantly different in shape than in the femur, and lacunar density is higher in the femoral neck. These results show that the radius, a non-weight-bearing bone, is significantly different in terms of its microstructure from a weight-bearing bone such as the femur. This implies that the cortical bone properties evaluated on the femoral diaphysis, the main location studied within the literature, cannot be generalized to other anatomical locations.

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Source
http://dx.doi.org/10.1016/j.jsb.2018.08.006DOI Listing

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