DocumentCode :
2574551
Title :
3D X-ray CT imaging of the bone Lacuno-Canalicular Network
Author :
Peyrin, Françoise ; Pacureanu, Alexandra ; Zuluaga, Maria Alejandra ; Dong, Pei ; Langer, Max
Author_Institution :
INSA-Lyon, Univ. de Lyon, Villeurbanne, France
fYear :
2012
fDate :
2-5 May 2012
Firstpage :
1788
Lastpage :
1791
Abstract :
Imaging of the trabecular bone network has made significant advances in the last decade thanks to the outstanding development of 3D X-ray micro-CT. Compared to standard histomorphometry, this technique provides non-destructively 3D images of the trabecular bone permitting a so-called model-independent quantification of this network. Today, the assessment of the bone Lacuno-Canalicular Network (LCN) is a new challenge at the cellular scale. The LCN forms a communication network interconnecting the osteocytes, the bone cells embedded in the mineralized matrix. It plays a major role in mechanotransduction with important implications on bone remodeling and finally bone strength. However, methods for the 3D assessment of the LCN are lacking. In a recent work, we have shown the feasibility of imaging the LCN in 3D thanks to Synchrotron Radiation nano-CT (voxel size 280 nm). These first images of the LCN in 3D open new challenges in image processing to segment and quantify the LCN. After recalling the principle of image acquisition, we present our first approaches for enhancing the contrast of canaliculi and segmenting the LCN. Finally, to increase the connectivity of the network, we consider a new approach based on 3D geodesic voting, offering promising perspectives. Results on experimental 3D images of the 3D LCN in human femoral bone are presented.
Keywords :
bone; cellular biophysics; computerised tomography; image enhancement; image segmentation; medical image processing; 3D LCN; 3D X-ray CT imaging; 3D X-ray microCT; 3D assessment; 3D geodesic voting; bone cells; bone lacuno-canalicular network; bone remodeling; cellular scale; communication network; human femoral bone; image acquisition; image processing; mechanotransduction; mineralized matrix; model-independent quantification; nondestructive 3D image; osteocytes; synchrotron radiation nanoCT; trabecular bone network; Bones; Image segmentation; Imaging; Irrigation; Maximum likelihood detection; Nonlinear filters; X-ray imaging; X-ray CT; bone micro-architecture; micro-CT; nano-CT; osteocyte network; synchrotron radiation;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Biomedical Imaging (ISBI), 2012 9th IEEE International Symposium on
Conference_Location :
Barcelona
ISSN :
1945-7928
Print_ISBN :
978-1-4577-1857-1
Type :
conf
DOI :
10.1109/ISBI.2012.6235929
Filename :
6235929
Link To Document :
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