Noninvasive In Vivo Monitoring of Bone Architecture Alterations in Hindlimb-Unloaded Female Rats Using Novel Three-Dimensional Microcomputed Tomography
Open Access
- 1 September 2003
- journal article
- research article
- Published by Oxford University Press (OUP) in Journal of Bone and Mineral Research
- Vol. 18 (9), 1622-1631
- https://doi.org/10.1359/jbmr.2003.18.9.1622
Abstract
We tested a novel microcomputed tomograph designed to longitudinally and noninvasively monitor bone alterations in hindlimb-unloaded female rats at a resolution of 26 μm over a period of 3 weeks. This prototype has a potential to detect three-dimensional trabecular microarchitectural changes induced by growth and unloading. Introduction: Until now, data concerning structural changes of cancellous bone have only been available after necropsy of animals. In this study, we tested a novel microcomputed tomography (μCT) technique designed to monitor such changes repeatedly at a resolution of 26 μm with an acquisition time of about 10 minutes to map the entire proximal tibial metaphysis. Materials and Methods: Four-month-old female Wistar rats were randomized to seven groups of 10 animals to be either tail-suspended or to act as controls. μCT and DXA measurements were performed at 0, 7, 14, and 23 days in suspended and control rats. One group was killed at each of these time points, and bone samples were processed for histomorphometry and ex vivo μCT. Results: We verified that a good correlation was obtained between two-dimensional bone parameters evaluated in longitudinal tibial sections either by histomorphometry or μCT and μCT parameters obtained from either in vivo or ex vivo tibias. The longitudinal survey allowed earlier detection of both growth and unloading-related bone changes than the transverse survey. In controls, aging induced denser bones, reorganization of the trabecular network toward a more oriented plate-like structure, and an isotropic pattern. Unloading first inhibited cortical and cancellous bone growth and then induced bone loss characterized by fewer trabeculae, reduced connectivity density, and enhanced structure model index (SMI), revealing a lighter cancellous structure with development of rod-like characteristics. Conclusion: We show for the first time that this μCT prototype has a great potential to accurately, repeatedly, reliably, and rapidly investigate alterations of three-dimensional trabecular microarchitecture.Keywords
This publication has 28 references indexed in Scilit:
- Age‐related variations in the microstructure of human tibial cancellous boneJournal of Orthopaedic Research, 2002
- Direct Three-Dimensional Morphometric Analysis of Human Cancellous Bone: Microstructural Data from Spine, Femur, Iliac Crest, and CalcaneusJournal of Bone and Mineral Research, 1999
- Calibration of trabecular bone structure measurements of in vivo three-dimensional peripheral quantitative computed tomography with 28-μm-resolution microcomputed tomographyBone, 1999
- A new method for the model‐independent assessment of thickness in three‐dimensional imagesJournal of Microscopy, 1997
- Quantification of Bone Microarchitecture with the Structure Model IndexComputer Methods in Biomechanics and Biomedical Engineering, 1997
- Quantification of connectivity in cancellous bone, with special emphasis on 3-D reconstructionsBone, 1993
- Microstructural changes of osteopenic trabeculae in the ratBone, 1991
- Osteopenia in the immobilized rat hind limb is associated with increased bone resorption and decreased bone formationBone, 1989
- Marching cubes: A high resolution 3D surface construction algorithmACM SIGGRAPH Computer Graphics, 1987
- Relationships between surface, volume, and thickness of iliac trabecular bone in aging and in osteoporosis. Implications for the microanatomic and cellular mechanisms of bone loss.Journal of Clinical Investigation, 1983