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Perilli, E.
;
Baleani, M.
;
Öhman, C.
; Fognani, R.;
Baruffaldi, F.
;
Viceconti, M.
Dependence of mechanical compressive strength on local variations in microarchitecture in cancellous bone of proximal human femur
J Biomech
. 2008;41(2):438-446
Links
DOI:
10.1016/j.jbiomech.2007.08.003
PubMed:
17949726
WoS:
000253219800025
Cited Works (38)
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2000
Ciarelli TE, Fyhrie DP, Schaffler MB, Goldstein SA. Variations in three‐dimensional cancellous bone architecture of the proximal femur in female hip fractures and in controls.
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2005
Thomsen JS, Laib A, Koller B, Prohaska S, Mosekilde L, Gowin W. Stereological measures of trabecular bone structure: comparison of 3D micro computed tomography with 2D histological sections in human proximal tibial bone biopsies.
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2007
Perilli E, Baruffaldi F, Visentin M, Bordini B, Traina F, Cappello A, Viceconti M. MicroCT examination of human bone specimens: effects of polymethylmethacrylate embedding on structural parameters.
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1994
Keaveny TM, Guo XE, Wachtel EF, McMahon TA, Hayes WC. Trabecular bone exhibits fully linear elastic behavior and yields at low strains.
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1994
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2004
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J Biomech
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2006
Nazarian A, Stauber M, Zurakowski D, Snyder BD, Müller R. The interaction of microstructure and volume fraction in predicting failure in cancellous bone.
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1988
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1996
Müller R, Koller B, Hildebrand T, Laib A, Gianolini S, Rüegsegger P. Resolution dependency of microstructural properties of cancellous bone based on three-dimensional μ-tomography.
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1991
Ciarelli MJ, Goldstein SA, Kuhn JL, Cody DD, Brown MB. Evaluation of orthogonal mechanical properties and density of human trabecular bone from the major metaphyseal regions with materials testing and computed tomography.
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1977
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1994
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J Biomech
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2006
Teo JCM, Si-Hoe KM, Keh JEL, Teoh SH. Relationship between CT intensity, micro-architecture and mechanical properties of porcine vertebral cancellous bone.
Clin Biomech
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1998
Majumdar S. A review of magnetic resonance (MR) imaging of trabecular bone micro-architecture: contribution to the prediction of biomechanical properties and fracture prevalence.
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2002
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2005
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1988
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J Biomech
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2007
Öhman C, Baleani M, Perilli E, Dall’Ara E, Tassani S, Baruffaldi F, Viceconti M. Mechanical testing of cancellous bone from the femoral head: experimental errors due to off-axis measurements.
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1970
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1984
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1989
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J Biomech
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1999
Hildebrand T, Laib A, Müller R, Dequeker J, Rüegsegger P. Direct three-dimensional morphometric analysis of human cancellous bone: microstructural data from spine, femur, iliac crest, and calcaneus.
J Bone Miner Res
. July 1999;14(7):1167-1174.
1997
Odgaard A. Three-dimensional methods for quantification of cancellous bone architecture.
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1998
Majumdar S, Kothari M, Augat P, Newitt DC, Link TM, Lin JC, Lang T, Lu Y, Genant HK. High-resolution magnetic resonance imaging: three-dimensional trabecular bone architecture and biomechanical properties.
Bone
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2003
Morgan EF, Bayraktar HH, Keaveny TM. Trabecular bone modulus–density relationships depend on anatomic site.
J Biomech
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1997
McCalden RW, McGeough JA, Court-Brown CM. Age-related changes in the compressive strength of cancellous bone: the relative importance of changes in density and trabecular architecture.
J Bone Joint Surg
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1992
Linde F, Hvid I, Madsen F. The effect of specimen geometry on the mechanical behaviour of trabecular bone specimens.
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. 1992;25(4):359-368.
1993
Linde F, Sørensen HCF. The effect of different storage methods on the mechanical properties of trabecular bone.
J Biomech
. 1993;26(10):1249-1252.
1998
Thomsen JS, Ebbesen EN, Mosekilde L. Relationships between static histomorphometry and bone strength measurements in human iliac crest bone biopsies author links open overlay panel.
Bone
. February 1998;22(2):153-163.
1996
Marshall D, Johnell O, Wedel H. Meta-analysis of how well measures of bone mineral density predict occurrence of osteoporotic fractures.
BMJ
. May 18, 1996;312(7041):1254-1259.
1993
Keaveny TM, Borchers RE, Gibson L, Hayes WC. Trabecular bone modulus and strength can depend on specimen geometry.
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. August 1993;26(8):991-995.
Cited By (39)
Year
Entry
2015
Oroszlány Á, Nagy P, Kovács JG. Compressive properties of commercially available PVC foams intended for use as mechanical models for human cancellous bone.
Acta Polytech Hung
. 2015;12(2):89-101.
2021
Martelli S, Giorgi M, Dall'Ara E, Perilli E. Damage tolerance and toughness of elderly human femora.
Acta Biomater
. March 15, 2021;123:167-177.
2021
Bonithon R, Kao AP, Fernández MP, Dunlop JN, Blunn GW, Witte F, Tozzi G. Multi-scale mechanical and morphological characterisation of sintered porous magnesium-based scaffolds for bone regeneration in critical-sized defects.
Acta Biomater
. June 2021;127:338-352.
2010
Lievers WB, Petryshyn AC, Poljsak AS, Waldman SD, Pilkey AK. Specimen diameter and “side artifacts” in cancellous bone evaluated using end-constrained elastic tension.
Bone
. August 2010;47(2):371-377.
2013
Hambli R. Micro-CT finite element model and experimental validation of trabecular bone damage and fracture.
Bone
. October 2013;56(2):363-374.
2020
Creecy A, Uppuganti S, Girard MR, Schlunk SG, Amah C, Granke M, Unal M, Does MD, Nyman JS. The age-related decrease in material properties of BALB/c mouse long bones involves alterations to the extracellular matrix.
Bone
. January 2020;130:115126.
2021
Surowiec RK, Ram S, Idiyatullin D, Goulet R, Schlecht SH, Galban CJ, Kozloff KM. In vivo quantitative imaging biomarkers of bone quality and mineral density using multi-band-SWIFT magnetic resonance imaging.
Bone
. February 2021;143:115615.
2018
Zhao S, Arnold M, Ma S, Abel RL, Cobb JP, Hansen U, Boughton O. Standardizing compression testing for measuring the stiffness of human bone.
Bone Joint Res
. August 2018;7(8):524-538.
2020
Roux J-P, Boutroy S, Bouxsein ML, Chapurlat R, Wegrzyn J. Local and global microarchitecture is associated with different features of bone biomechanics.
Bone Rep
. December 1, 2020;13:100716.
2011
Tassani S, Particelli F, Perilli E, Traina F, Baruffaldi F, Viceconti M. Dependence of trabecular structure on bone quantity: a comparison between osteoarthritic and non-pathological bone.
Clin Biomech
(Bristol, Avon). July 2011;26:632-639.
2017
Tsirigotis A, Deligianni DD. Combining digital image correlation and acoustic emission for monitoring of the strain distribution until yielding during compression of bovine cancellous bone.
Front Mater
. December 20, 2017;4:44.
2012
Skedros JG, Knight AN, Farnsworth RW, Bloebaum RD. Do regional modifications in tissue mineral content and microscopic mineralization heterogeneity adapt trabecular bone tracts for habitual bending? analysis in the context of trabecular architecture of deer calcanei.
J Anat
. March 2012;220(3):242-255.
2010
Tassani S, Öhman C, Baleani M, Baruffaldi F, Viceconti M. Anisotropy and inhomogeneity of the trabecular structure can describe the mechanical strength of osteoarthritic cancellous bone.
J Biomech
. April 19, 2010;43(6):1160-1166.
2012
Tassani S, Matsopoulos GK, Baruffaldi F. 3D identification of trabecular bone fracture zone using an automatic image registration scheme: a validation study.
J Biomech
. July 26, 2012;45(11):2035-2040.
2014
Roberts BC, Perilli E, Reynolds KJ. Application of the digital volume correlation technique for the measurement of displacement and strain fields in bone: a literature review.
J Biomech
. March 21, 2014;47(5):923-934.
2015
Oftadeh R, Perez-Viloria M, Villa-Camacho JC, Vaziri A, Nazarian A. Biomechanics and mechanobiology of trabecular bone: a review.
J Biomech Eng
. January 2015;137(1):010802.
2009
Gourion‐Arsiquaud S, Faibish D, Myers E, Spevak L, Compston J, Hodsman A, Shane E, Recker RR, Boskey ER, Boskey AL. Use of FTIR spectroscopic imaging to identify parameters associated with fragility fracture.
J Bone Miner Res
. September 2009;24(9):1565-1571.
2010
Lievers WB, Waldman SD, Pilkey AK. Minimizing specimen length in elastic testing of end-constrained cancellous bone.
J Mech Behav Biomed Mater
. January 2010;3(1):22-30.
2020
Acciaioli A, Falco L, Balean M. Measurement of apparent mechanical properties of trabecular bone tissue: accuracy and limitation of digital image correlation technique.
J Mech Behav Biomed Mater
. March 2020;103:103542.
2020
Arnold EL, Clement J, Rogers KD, Garcia-Castro F, Greenwood C. The use of μCT and fractal dimension for fracture prediction in osteoporotic individuals.
J Mech Behav Biomed Mater
. March 2020;103:103585.
2020
Fleps I, Bahaloo H, Zysset PK, Ferguson SJ, Pálsson H, Helgason B. Empirical relationships between bone density and ultimate strength: a literature review.
J Mech Behav Biomed Mater
. October 2020;110:103866.
2021
Sas A, Helgason B, Ferguson SJ, van Lenthe GH. Mechanical and morphological characterization of PMMA/bone composites in human femoral heads.
J Mech Behav Biomed Mater
. March 2021;115:104247.
2022
Kusins J, Knowles N, Martensson N, Columbus MP, Athwal GS, Ferreira LM. Full-field experimental analysis of the influence of microstructural parameters on the mechanical properties of humeral head trabecular bone.
J Orthop Res
. September 2022;40(9):2048-2056.
2021
Metzner F, Neupetsch C, Fischer J-P, Drossel W-G, Heyde C-E, Schleifenbaum S. Influence of osteoporosis on the compressive properties of femoral cancellous bone and its dependence on various density parameters.
Sci Rep
. June 24, 2021;11(1):13284.
2011
Donaldson FE.
On Incorporating Bone Microstructure in Macro-Finite-Element Models
[PhD thesis]. Edinburgh, UK: University of Edinburgh; March 2011.
2020
Bennison MBL.
The Role of Cancellous Bone Architecture in Misalignment and Side Effect Errors
[Master's thesis]. Sudbury, ON: Laurentian University; 2020.
2023
Inacio JHV.
Application of Virtual Mechanical Testing on Clinical Bone Fractures
[PhD thesis]. Lehigh University; January 2023.
2015
Oftadeh R.
Hierarchical Analysis and Multiscale Modelling of Cellular Structures: From Meta Materials to Bone Structure
[PhD thesis]. Northeastern University; December 2015.
2011
Wu Z.
Measures of Bone Quality and Their Relationship to Bone Mechanical Properties
[PhD thesis]. University of Notre Dame; December 2011.
2017
Kreipke TC.
Structural, Mechanical, and Biological Relationships of Trabecular Bone in Osteoporosis
[PhD thesis]. University of Notre Dame; April 2017.
2020
Karali A.
Multi-Scale Evaluation of Bone Combining Indentation, in Situ XCT Mechanics and Digital Volume Correlation
[PhD thesis]. Portsmouth, England: University of Portsmouth; 2020.
2009
Lievers WB.
Effects of Geometric and Material Property Changes on the Apparent Elastic Properties of Cancellous Bone
[PhD thesis]. Queen's University; April 2009.
2013
Morton JJ.
An Investigation of Rat Vertebra Failure Behaviour Under Uniaxial Compression Through Time-Lapsed Micro-CT Imaging
[Master's thesis]. Queen's University; 2013.
2013
Toal VR.
The Mechanics of Microdamage and Microfracture in Trabecular Bone
[PhD thesis]. Brisbane, Australia: Queensland University of Technology; September 2013.
2023
Branni MG.
Constitutive Models of Bone: The Human Femur
[PhD thesis]. Queensland University of Technology; 2023.
2019
Surowiec R.
Novel Models to Image and Quantify Bone Drug Efficacy and Disease Progression in Vivo: Addressing the Fragility Phenotype
[PhD thesis]. University of Michigan; 2019.
2013
Iori G.
Micro-FEM Models Based on Micro-CT Reconstructions for the in Vitro Characterization of the Elastic Properties of Trabecular Bone Tissue
[Master's thesis]. University of Bologna; 2013.
2023
Zhou Y.
Mechanical Optimization of Orthopaedic Bone Screw Constructs
[PhD thesis]. Utrecht University; 2023.
2021
Kusins J.
A Multi-Level Mechanical Assessment of the Shoulder Coupled With Evaluation of Upper Extremity Predictive Finite Element Models
[PhD thesis]. University of Western Ontario; 2021.