In vivo Visualisation and Quantification of Bone Resorption and Bone Formation from Time-Lapse Imaging

被引:31
作者
Christen, Patrik [1 ]
Mueller, Ralph [1 ]
机构
[1] Swiss Fed Inst Technol, Inst Biomech, Leopold Ruzicka Weg 4, CH-8093 Zurich, Switzerland
关键词
Time-lapse in vivo imaging; micro-CT; HR-pQCT; micro-FE analysis; bone resorption and bone formation mechanoregulation; TRABECULAR BONE; CORTICAL BONE; FUNCTIONAL ADAPTATION; LOADING ESTIMATION; CANCELLOUS BONE; SHORT-TERM; HR-PQCT; STRENGTH; MICROARCHITECTURE; VALIDATION;
D O I
10.1007/s11914-017-0372-1
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Purpose of Review Mechanoregulation of bone cells was proposed over a century ago, but only now can we visualise and quantify bone resorption and bone formation and its mechanoregulation. In this review, we show how the newest advances in imaging and computational methods paved the way for this breakthrough. Recent Findings Non-invasive in vivo assessment of bone resorption and bone formation was demonstrated by time-lapse micro-computed tomography in animals, and by high-resolution peripheral quantitative computed tomography in humans. Coupled with micro-finite element analysis, the relationships between sites of bone resorption and bone formation and low and high tissue loading, respectively, were shown. Summary Time-lapse in vivo imaging and computational methods enabled visualising and quantifying bone resorption and bone formation as well as its mechanoregulation. Future research includes visualising and quantifying mechanoregulation of bone resorption and bone formation from molecular to organ scales, and translating the findings into medicine using personalised bone health prognosis.
引用
收藏
页码:311 / 317
页数:7
相关论文
共 52 条
[1]   In vivo assessment of bone structure and estimated bone strength by first- and second-generation HR-pQCT [J].
Agarwal, S. ;
Rosete, F. ;
Zhang, C. ;
McMahon, D. J. ;
Guo, X. E. ;
Shane, E. ;
Nishiyama, K. K. .
OSTEOPOROSIS INTERNATIONAL, 2016, 27 (10) :2955-2966
[2]   Quantification of skeletal growth, modeling, and remodeling by in vivo micro computed tomography [J].
Altman, Allison R. ;
Tseng, Wei-Ju ;
de Bakker, Chantal M. J. ;
Chandra, Abhishek ;
Lan, Shenghui ;
Huh, Beom Kang ;
Luo, Shiming ;
Leonard, Mary B. ;
Qin, Ling ;
Liu, X. Sherry .
BONE, 2015, 81 :370-379
[3]   Trabecular and Cortical Bone Density and Architecture in Women After 60 Days of Bed Rest Using High-Resolution pQCT: WISE 2005 [J].
Armbrecht, Gabriele ;
Belavy, Daniel Ludovic ;
Backstroem, Magdalena ;
Beller, Gisela ;
Alexandre, Christian ;
Rizzoli, Rene ;
Felsenberg, Dieter .
JOURNAL OF BONE AND MINERAL RESEARCH, 2011, 26 (10) :2399-2410
[4]   A Wolff in sheep's clothing: Trabecular bone adaptation in response to changes in joint loading orientation [J].
Barak, Meir M. ;
Lieberman, Daniel E. ;
Hublin, Jean-Jacques .
BONE, 2011, 49 (06) :1141-1151
[5]   Monitoring in vivo (re)modeling: A computational approach using 4D microCT data to quantify bone surface movements [J].
Birkhold, Annette I. ;
Razi, Hajar ;
Weinkamer, Richard ;
Duda, Georg N. ;
Checa, Sara ;
Willie, Bettina M. .
BONE, 2015, 75 :210-221
[6]   The influence of age on adaptive bone formation and bone resorption [J].
Birkhold, Annette I. ;
Razi, Hajar ;
Duda, Georg N. ;
Weinkamer, Richard ;
Checa, Sara ;
Willie, Bettina M. .
BIOMATERIALS, 2014, 35 (34) :9290-9301
[7]   An improved inverse dynamics formulation for estimation of external and internal loads during human sagittal plane movements [J].
Blajer, Wojciech ;
Dziewiecki, Krzysztof ;
Mazur, Zenon .
COMPUTER METHODS IN BIOMECHANICS AND BIOMEDICAL ENGINEERING, 2015, 18 (04) :362-375
[8]   Monitoring individual morphological changes over time in ovariectomized rats by in vivo micro-computed tomography [J].
Boyd, Steven K. ;
Davison, Peter ;
Mueller, Ralph ;
Gasser, Juerg A. .
BONE, 2006, 39 (04) :854-862
[9]   In vivo evaluation of bone microstructure in humans: Clinically useful? [J].
Chapurlat, Roland .
BONEKEY REPORTS, 2016, 5
[10]  
Christen P, 2015, IBMS BONEKEY, V13, P116