Modalities for visualization of cortical bone remodeling: the past, present, and future

被引:26
作者
Harrison, Kimberly D. [1 ]
Cooper, David M. L. [1 ]
机构
[1] Univ Saskatchewan, Dept Anat & Cell Biol, 107 Wiggins Rd, Saskatoon, SK S7N 5E5, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
basic multicellular unit; bone; remodeling; micro-CT; synchrotron; MICRO-COMPUTED-TOMOGRAPHY; OSTEOCYTE LACUNAR DENSITY; IN-VIVO; SYNCHROTRON-RADIATION; MICROCOMPUTED TOMOGRAPHY; FATIGUE MICRODAMAGE; MULTICELLULAR UNIT; TRABECULAR BONE; 3D STRUCTURE; RESORPTION SPACES;
D O I
10.3389/fendo.2015.00122
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Bone's ability to respond to load-related phenomena and repair microdamage is achieved through the remodeling process, which renews bone by activating groups of cells known as basic multicellular units (BMUs). The products of BMUs, secondary osteons, have been extensively studied via classic two-dimensional techniques, which have provided a wealth of information on how histomorphology relates to skeletal structure and function. Remodeling is critical in maintaining healthy bone tissue; however, in osteoporotic bone, imbalanced resorption results in increased bone fragility and fracture. With increasing life expectancy, such degenerative bone diseases are a growing concern. The three-dimensional (3D) morphology of BMUs and their correlation to function, however, are not well-characterized and little is known about the specific mechanisms that initiate and regulate their activity within cortical bone. We believe a key limitation has been the lack of 3D information about BMU morphology and activity. Thus, this paper reviews methodologies for 3D investigation of cortical bone remodeling and, specifically, structures associated with BMU activity (resorption spaces) and the structures they create (secondary osteons), spanning from histology to modern ex vivo imaging modalities, culminating with the growing potential of in vivo imaging. This collection of papers focuses on the theme of "putting the 'why' back into bone architecture." Remodeling is one of two mechanisms "how" bone structure is dynamically modified and thus an improved 3D understanding of this fundamental process is crucial to ultimately understanding the "why."
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页数:9
相关论文
共 87 条
[41]  
Johnson L., 1964, Bone biodynamics, V1, P543
[42]   A comparison of methods for in vivo assessment of cortical porosity in the human appendicular skeleton [J].
Jorgenson, Britta L. ;
Buie, Helen R. ;
McErlain, David D. ;
Sandino, Clara ;
Boyd, Steven K. .
BONE, 2015, 73 :167-175
[43]   Strain gradients correlate with sites of exercise-induced bone-forming surfaces in the adult skeleton [J].
Judex, S ;
Gross, TS ;
Zernicke, RF .
JOURNAL OF BONE AND MINERAL RESEARCH, 1997, 12 (10) :1737-1745
[44]  
KINNEY JH, 1995, J BONE MINER RES, V10, P264
[45]   Radiation effects on bone architecture in mice and rats resulting from in vivo micro-computed tomography scanning [J].
Klinck, R. Josh ;
Campbell, Graeme M. ;
Boyd, Steven K. .
MEDICAL ENGINEERING & PHYSICS, 2008, 30 (07) :888-895
[46]   Contrast-enhanced micro-computed tomography of fatigue microdamage accumulation in human cortical bone [J].
Landrigan, Matthew D. ;
Li, Jiliang ;
Turnbull, Travis L. ;
Burr, David B. ;
Niebur, Glen L. ;
Roeder, Ryan K. .
BONE, 2011, 48 (03) :443-450
[47]   X-Ray Phase Nanotomography Resolves the 3D Human Bone Ultrastructure [J].
Langer, Max ;
Pacureanu, Alexandra ;
Suhonen, Heikki ;
Grimal, Quentin ;
Cloetens, Peter ;
Peyrin, Francoise .
PLOS ONE, 2012, 7 (08)
[48]   Development of micro-CT protocols for in vivo follow-up of mouse bone architecture without major radiation side effects [J].
Laperre, K. ;
Depypere, M. ;
van Gastel, N. ;
Torrekens, S. ;
Moermans, K. ;
Bogaerts, R. ;
Maes, F. ;
Carmeliet, G. .
BONE, 2011, 49 (04) :613-622
[49]   Synchrotron Radiation Micro-CT at the Micrometer Scale for the Analysis of the Three-Dimensional Morphology of Microcracks in Human Trabecular Bone [J].
Larrue, Aymeric ;
Rattner, Aline ;
Peter, Zsolt-Andrei ;
Olivier, Cecile ;
Laroche, Norbert ;
Vico, Laurence ;
Peyrin, Francoise .
PLOS ONE, 2011, 6 (07)
[50]   Detecting microdamage in bone [J].
Lee, TC ;
Mohsin, S ;
Taylor, D ;
Parkesh, R ;
Gunnlaugsson, T ;
O'Brien, FJ ;
Giehl, M ;
Gowin, W .
JOURNAL OF ANATOMY, 2003, 203 (02) :161-172