Towards quantitative 3D imaging of the osteocyte lacuno-canalicular network

被引:130
作者
Schneider, Philipp [1 ]
Meier, Matias [1 ]
Wepf, Roger [2 ]
Mueller, Ralph [1 ]
机构
[1] ETH, Inst Biomech, CH-8093 Zurich, Switzerland
[2] ETH, Ctr Electron Microscopy, CH-8093 Zurich, Switzerland
关键词
Bone; Ultrastructure; Osteocyte lacunae; Canaliculi; Lacuno-canalicular network; 3D imaging; Light microscopy; CLSM; SEM; Serial FIB/SEM; TEM; CT; SCANNING-ELECTRON-MICROSCOPY; FOCUSED ION-BEAM; FLOW-INDUCED MECHANOTRANSDUCTION; HUMAN SECONDARY OSTEONS; HUMAN CANCELLOUS BONE; HUMAN CORTICAL BONE; TRABECULAR BONE; STRAIN AMPLIFICATION; 3-DIMENSIONAL RECONSTRUCTION; COMPUTED-TOMOGRAPHY;
D O I
10.1016/j.bone.2010.07.026
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Osteocytes are the most abundant cells in bone and the only cells embedded in the bone mineral matrix. They form an extended, three-dimensional (3D) network, whose processes interconnecting the cell bodies reside in thin canals, the canaliculi. Together with the osteocyte lacunae, the canaliculi form the lacuno-canalicular network (LCN). As the negative imprint of the cellular network within bone tissue, the LCN morphology is considered to play a central role for bone mechanosensation and mechanotransduction. However, the LCN has neither been visualized nor quantified in an adequate way up to now. On this account, this article summarizes the current state of knowledge of the LCN morphology and then reviews different imaging methods regarding the quantitative 3D assessment of bone tissue in general and of the LCN in particular. These imaging methods will provide new insights in the field of bone mechanosensation and mechanotransduction and thus, into processes of strain sensation and transduction, which are tightly associated with osteocyte viability and bone quality. (C) 2010 Elsevier Inc. All rights reserved.
引用
收藏
页码:848 / 858
页数:11
相关论文
共 164 条
[1]   FUNCTION OF OSTEOCYTES IN BONE [J].
AARDEN, EM ;
BURGER, EH ;
NIJWEIDE, PJ .
JOURNAL OF CELLULAR BIOCHEMISTRY, 1994, 55 (03) :287-299
[2]   Nano-microscale models of periosteocytic flow show differences in stresses imparted to cell body and processes [J].
Anderson, EJ ;
Kaliyamoorthy, S ;
Alexander, JID ;
Tate, MLK .
ANNALS OF BIOMEDICAL ENGINEERING, 2005, 33 (01) :52-62
[3]   Idealization of pericellular fluid space geometry and dimension results in a profound underprediction of nano-microscale stresses imparted by fluid drag on osteocytes [J].
Anderson, Eric J. ;
Tate, Melissa L. Knothe .
JOURNAL OF BIOMECHANICS, 2008, 41 (08) :1736-1746
[4]   Pairing computational and scaled physical models to determine permeability as a measure of cellular communication in micro- and nano-scale pericellular spaces [J].
Anderson, Eric J. ;
Kreuzer, Steven M. ;
Small, Oliver ;
Tate, Melissa L. Knothe .
MICROFLUIDICS AND NANOFLUIDICS, 2008, 4 (03) :193-204
[5]  
[Anonymous], NANOFABRICA IN PRESS
[6]   Osteocyte lacunar size-lamellar thickness relationships in human secondary osteons [J].
Ardizzoni, A .
BONE, 2001, 28 (02) :215-219
[7]   Quantification of periapical bone destruction in mice by micro-computed tomography [J].
Balto, K ;
Müller, R ;
Carrington, DC ;
Dobeck, J ;
Stashenko, P .
JOURNAL OF DENTAL RESEARCH, 2000, 79 (01) :35-40
[8]   Vertebral cancellous bone turn-over: Microcallus and bridges in backscatter electron microscopy [J].
Banse, X ;
Devogelaer, JP ;
Holmyard, D ;
Grynpas, A .
MICRON, 2005, 36 (7-8) :710-714
[9]   Estimation of bone permeability using accurate microstructural measurements [J].
Beno, Thoma ;
Yoon, Young-June ;
Cowin, Stephen C. ;
Fritton, Susannah P. .
JOURNAL OF BIOMECHANICS, 2006, 39 (13) :2378-2387
[10]   Determining mineral content variations in bone using backscattered electron imaging [J].
Bloebaum, RD ;
Skedros, JG ;
Vajda, EG ;
Bachus, KN ;
Constantz, BR .
BONE, 1997, 20 (05) :485-490