wbldb
home
|
authors
|
theses
Bell, G. H.; Dunbar, Olive; Beck, J. S.; Gibb, A.
Variations in strength of vertebrae with age and their relation to osteoporosis
Calcif Tiss Res
. 1967;1(1):75-86
Links
DOI:
10.1007/BF02008077
PubMed:
6060146
Cited Works (3)
Year
Entry
1966
Swanson SAV, Freeman MAR. Is bone hydraulically strengthened?
Med Biol Eng
. September 1966;4(5):433-438.
1960
Beck JS, Nordin BEC. Histological assessment of osteoporosis by iliac crest biopsy.
J Pathol Bacteriol
. 1960;80(2):391-397.
1966
Mueller KH, Trias A, Ray RD. Bone density and composition: age-related and pathological changes in water and mineral content.
J Bone Joint Surg
. January 1966;48A(1):140-148.
Cited By (89)
Year
Entry
1992
Bradbeer JN, Arlott ME, Meunier PJ, Reeve J. Treatment of osteoporosis with parathyroid peptide (hPTH 1-34) and oestrogen: increase in volumetric density of iliac cancellous bone may depend on reduced trabecular spacing as well as increased thickness of packets of newly formed bone.
Clin Endocrinol
. September 1992;37(3):282-289.
1994
Linde F. Elastic and viscoelastic properties of trabecular bone by a compression testing approach.
Dan Med Bull
. April 1994;41(2):119-138.
2002
Wehrli F, Saha P, Gomberg B, Song H, Snyder P, Benito M, Wright A, Weening R. Role of magnetic resonance for assessing structure and function of trabecular bone.
Top Magn Reson Imaging
. October 2002;13(5):335-355.
1988
Melton LJ III, Chao EYS, Lane J. Biomechanical aspects of fractures. In: Riggs BL, Melton LJ III, eds.
Osteoporosis: Etiology, Diagnosis, and Management
. New York, NY: Raven Press; 1988:111-131.
1990
Snyder BD, Hayes WC. Multiaxial structure-property relations in trabecular bone. In: Mow VC, Ratcliffe A, Woo SL-Y, eds.
Biomechanics of Diarthrodial Joints
. Vol 2. New York, NY: Springer-Verlag; 1990:31-59.
1990
Mosekilde L. Age-related loss of vertebral trabecular bone mass and structure: biomechanical consequences. In: Mow VC, Ratcliffe A, Woo SL-Y, eds.
Biomechanics of Diarthrodial Joints
. Vol 2. New York, NY: Springer-Verlag; 1990:84-96.
2015
Stemper BD, Pintar FA, Baisden JL. Lumbar spine injury biomechanics. In: Yoganandan N, Nahum AM, Melvin JW, eds.
Accidental Injury: Biomechanics and Prevention
. 3rd ed. New York: Springer; 2015:451-470.
1969
Schenk RK, Merz WA, Müller J. A quantitative histological study on bone resorption in human cancellous bone.
Acta Anat
. 1969;76(1):44-53.
1970
Merz WA, Schenk RK. Quantitative structural analysis of human cancellous bone.
Acta Anat
. 1970;75(1):54-66.
2000
Ding M. Age variations in the properties of human tibial trabecular bone and cartilage.
Acta Orthop Scand
. 2000;71(suppl 292):1-45.
2002
Banse X. When density fails to predict bone strength.
Acta Orthop Scand
. 2002;73(2)(suppl 303):2-57.
1986
Melton LJ III, Wahner HW, Richelson LS, O'Fallon WM, Riggs BL. Osteoporosis and the risk of hip fracture.
Am J Epidemiol
. August 1986;124(2):254-261.
1976
Evans FG. Mechanical properties and histology of cortical bone from younger and older men.
Anat Rec
. 1976;185(1):1-12.
2001
Borah B, Gross GJ, Dufresne TE, Smith TS, Cockman MD, Chmielewski PA, Lundy MW, Hartke JR, Sod EW. Three‐dimensional microimaging (MRμI and μCT), finite element modeling, and rapid prototyping provide unique insights into bone architecture in osteoporosis.
Anat Rec
. April 15, 2001;265(2):101-110.
2018
Xie S, Wallace RJ, Callanan A, Pankaj P. From tension to compression: asymmetric mechanical behaviour of trabecular bone’s organic phase.
Ann Biomed Eng
. June 2018;46(6):801-809.
1973
Vernon-Roberts B, Pirie CJ. Healing trabecular microfractures in the bodies of lumbar vertebrae.
Ann Rheum Dis
. September 1973;32(5):406-412.
1985
Mosekilde L, Viidik A, Mosekilde L. Correlation between the compressive strength of iliac and vertebral trabecular bone in normal individuals.
Bone
. 1985;6(5):291-295.
1987
Mosekilde L, Mosekilde L, Danielsen CC. Biomechanical competence of vertebral trabecular bone in relation to ash density and age in normal individuals.
Bone
. 1987;8(2):79-85.
1988
Mosekilde L, Mosekilde L. Iliac crest trabecular bone volume as predictor for vertebral compressive strength, ash density and trabecular bone volume in normal individuals.
Bone
. 1988;9(4):195-199.
1988
Mosekilde L. Age-related changes in vertebral trabecular bone architecture—assessed by a new method.
Bone
. 1988;9(4):247-250.
1989
Mosekilde L. Sex differences in age-related loss of vertebral trabecular bone mass and structure—biomechanical consequences.
Bone
. 1989;10(6):425-432.
1991
Vesterby A, Mosekilde L, Gundersen HJG, Melsen F, Mosekilde L, Holme K, Sørensen S. Biologically meaningful determinants of the in vitro strength of lumbar vertebrae.
Bone
. 1991;12(3):219-224.
1992
Parfitt AM. Implications of architecture for the pathogenesis and prevention of vertebral fracture.
Bone
. 1992;13(suppl 2):S41-S47.
1994
Silva MJ, Wang C, Keaveny TM, Hayes WC. Direct and computed tomography thickness measurements of the human, lumbar vertebral shell and endplate.
Bone
. July 8, 1994;15(4):409-414.
1995
Grote HJ, Amling M, Vogel M, Hahn M, Pösl M, Delling G. Intervertebral variation in trabecular microarchitecture throughout the normal spine in relation to age.
Bone
. March 1995;16(3):301-308.
1997
Silva MJ, Gibson LJ. Modeling the mechanical behavior of vertebral trabecular bone: effects of age-related changes in microstructure.
Bone
. 1997;21(2):191-199.
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.
1999
Ebbesen EN, Thomsen JS, Beck-Nielsen H, Nepper-Rasmussen HJ, Mosekilde L. Lumbar vertebral body compressive strength evaluated by dual-energy X-ray absorptiometry, quantitative computed tomography, and ashing.
Bone
. December 1999;25(6):713-724.
2001
Banse X, Devogelaer JP, Munting E, Delloye C, Cornu O, Grynpas M. Inhomogeneity of human vertebral cancellous bone: systematic density and structure patterns inside the vertebral body.
Bone
. 2001;28(5):563-571.
2002
Thomsen JS, Ebbesen EN, Mosekilde L. Predicting human vertebral bone strength by vertebral static histomorphometry.
Bone
. March 2002;30(3):502-508.
2002
Ito M, Nishida A, Koga A, Ikeda S, Shiraishi A, Uetani M, Hayashi K, Nakamura T. Contribution of trabecular and cortical components to the mechanical properties of bone and their regulating parameters.
Bone
. September 2002;31(3):351-358.
2006
Bevill G, Eswaran SK, Gupta A, Papadopoulos P, Keaveny TM. Influence of bone volume fraction and architecture on computed large-deformation failure mechanisms in human trabecular bone.
Bone
. December 2006;39(6):1218-1225.
2013
Thomsen JS, Niklassen AS, Ebbesen EN, Brüel A. Age-related changes of vertical and horizontal lumbar vertebral trabecular 3D bone microstructure is different in women and men.
Bone
. November 2013;57(1):47-55.
1989
Eriksson SAV, Isberg BO, Lindgren JU. Prediction of vertebral strength by dual photon absorptiometry and quantitative computed tomography.
Calcif Tiss Int
. April 1989;44(4):243-250.
1990
Ross PD, Davis JW, Vogel JM, Wasnich RD. A critical review of bone mass and the risk of fractures in osteoporosis.
Calcif Tiss Int
. March 1990;46(3):149-161.
1993
Snyder BD, Piazza S, Edwards WT, Hayes WC. Role of trabecular morphology in the etiology of age-related vertebral fractures.
Calcif Tiss Int
. February 1993;53(suppl 1):S14-S22.
1993
Martin B. Aging and strength of bone as a structural material.
Calcif Tiss Int
. February 1993;53(suppl 1):S34-S40.
1993
Mosekilde L. Vertebral structure and strength in vivo and in vitro.
Calcif Tiss Int
. February 1993;53(suppl 1):S121-S126.
1969
Rockoff SD, Sweet E, Bleustein J. The relative contribution of trabecular and cortical bone to the strength of human lumbar vertebrae.
Calcif Tiss Res
. December 1969;3(1):163-175.
1970
Galante J, Rostoker W, Ray RD. Physical properties of trabecular bone.
Calcif Tiss Res
. 1970;5(1):236-246.
1989
Brinckmann P, Biggemann M, Hilweg D. Prediction of the compressive strength of human lumbar vertebrae.
Clin Biomech
(Bristol, Avon). 1989;4(suppl 2):S1-S27.
1985
Melton LJ, Riggs BL. Risk factors for injury after a fall.
Clin Geriatr Med
. August 1985;1(3):525-539.
1970
Currey JD. The mechanical properties of bone.
Clin Orthop Relat Res
. November–December 1970;73:210-231.
1982
Mazess RB. On aging bone loss.
Clin Orthop Relat Res
. May 1982;165:239-252.
1982
Krølner B, Pors Nielsen S. Bone mineral content of the lumbar spine in normal and osteoporotic women: cross-sectional and longitudinal studies.
Clin Sci
(London). March 1982;62(3):329-336.
1975
Townsend PR, Raux P, Rose RM, Miegel RE, Radin EL. The distribution and anisotropy of the stiffness of cancellous bone in the human patella.
J Biomech
. 1975;8(6):363-367.
1977
Jurist JM, Foltz AS. Human ulnar bending stiffness, mineral content, geometry and strength.
J Biomech
. 1977;10(8):455-459.
2002
Kim HS, Al-Hassan STS. A morphological model of vertebral trabecular bone.
J Biomech
. August 2002;35(8):1101-1114.
2004
Morgan E, Bayraktar H, Yeh O, Majumdar S, Burghardt A, Keaveny T. Contribution of inter-site variations in architecture to trabecular bone apparent yield strains.
J Biomech
. 2004;37(9):1413-1420.
1977
Carter DR, Hayes WC. The compressive behavior of bone as a two-phase porous structure.
J Bone Joint Surg
. 1977;59A(7):954-962.
1985
McBroom RJ, Hayes WC, Edwards WT, Goldberg RP, White AA III. Prediction of vertebral body compressive fracture using quantitative computed tomography.
J Bone Joint Surg
. 1985;67A(8):1206-1214.
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
. March 1997;79A(3):421-427.
1969
Amstutz HC, Sissons HA. The structure of the vertebral spongiosa.
J Bone Joint Surg
. August 1969;51B(3):540-550.
1997
Ding M, Dalstra M, Danielsen CC, Kabel J, Hvid I, Linde F. Age variations in the properties of human tibial trabecular bone.
J Bone Joint Surg
. November 1997;79B(6):995-1002.
1994
Myers BS, Arbogast KB, Lobaugh B, Harper KD, Richardson WJ, Drezner MK. Improved assessment of lumbar vertebral body strength using supine lateral dual‐energy X‐ray absorptiometry.
J Bone Miner Res
. May 1994;9(5):687-693.
1996
Augat P, Reeb H, Claes LE. Prediction of fracture load at different skeletal sites by geometric properties of the cortical shell.
J Bone Miner Res
. September 1996;11(9):1356-1363.
1999
Ebbesen EN, Thomsen JS, Beck‐Nielsen H, Nepper‐Rasmussen HJ, Mosekilde L. Age‐ and gender‐related differences in vertebral bone mass, density, and strength.
J Bone Miner Res
. August 1999;14(8):1394-1403.
2002
Borah B, Dufresne TE, Chmielewski PA, Gross GJ, Prenger MC, Phipps RJ. Risedronate preserves trabecular architecture and increases bone strength in vertebra of ovariectomized minipigs as measured by three‐dimensional microcomputed tomography.
J Bone Miner Res
. July 2002;17(7):1139-1147.
2005
Riggs BL, Parfitt AM. Drugs used to treat osteoporosis: the critical need for a uniform nomenclature based on their action on bone remodeling.
J Bone Miner Res
. February 2005;20(2):177-184.
2008
Arlot ME, Burt‐Pichat B, Roux J, Vashishth D, Bouxsein ML, Delmas PD. Microarchitecture influences microdamage accumulation in human vertebral trabecular bone.
J Bone Miner Res
. 2008;23(10):1613-1618.
2013
Gourion-Arsiquaud S, Lukashova L, Power J, Loveridge N, Reeve J, Boskey AL. Fourier transform infrared imaging of femoral neck bone: reduced heterogeneity of mineral-to-matrix and carbonate-to-phosphate and more variable crystallinity in treatment-naive fracture cases compared with fracture-free controls.
J Bone Miner Res
. January 2013;28(1):150-161.
1987
Hansson TH, Keller TS, Spengler DM. Mechanical behavior of the human lumbar spine, II: fatigue strength during dynamic compressive loading.
J Orthop Res
. 1987;5(4):479-487.
1980
Panjabi MM, White AA III. Basic biomechanics of the spine.
Neurosurgery
. July 1980;7(1):76-93.
1993
Dempster DW, Ferguson-Pell MW, Mellish RWE, Cochran GVB, Xie F, Fey C, Horbert W, Parisien M, Lindsay R. Relationships between bone structure in the iliac crest and bone structure and strength in the lumbar spine.
Osteoporos Int
. March 1993;3(2):90-96.
1998
Wehrli FW, Hwang SN, Ma J, Song HK, Ford JC, Haddad JG. Cancellous bone volume and structure in the forearm: noninvasive assessment with MR microimaging and image processing.
Radiology
. February 1998;206(2):347-357.
1988
Biggemann M, Hilweg D, Brinckmann P. Prediction of the compressive strength of vertebral bodies of the lumbar spine by quantitative computed tomography.
Skeletal Radiol
. June 1988;17(4):264-269.
1980
Hansson T, Roos B, Nachemson A. The bone mineral content and ultimate compressive strength of lumbar vertebrae.
Spine
. January–February 1980;5(1):46-55.
1987
Hansson TH, Keller TS, Panjabi MM. A study of the compressive properties of lumbar vertebral trabeculae: effects of tissue characteristics.
Spine
. January–February 1987;12(1):56-62.
1989
Keller TS, Hansson TH, Abram AC, Spengler DM, Panjabi MM. Regional variations in the compressive properties of lumbar vertebral trabeculae: effects of disc degeneration.
Spine
. September 1989;14(9):1012-1019.
1991
Cody DD, Goldstein SA, Flynn MJ, Brown EB. Correlations between vertebral regional bone mineral density (rBMD) and whole bone fracture load.
Spine
. 1991;16(2):146-154.
1997
Silva MJ, Keaveny TM, Hayes WC. Load sharing between the shell and centrum in the lumbar vertebral body.
Spine
. January 1997;22(2):140-150.
1998
Müller R, Gerber SC, Hayes WC. Micro-compression: a novel technique for the nondestructive assessment of local bone failure.
Technol Health Care
. December 1998;6(5-6):433-444.
2015
Oxland TR. A history of spine biomechanics: focus on 20th century progress.
Unfallchirurg
. December 2015;118(suppl 1):80-92.
2011
Cotter MM.
Gross Morphology, Microarchitecture, Strength and Evolution of the Hominoid Vertebral Body
[PhD thesis]. Cleveland, OH: Case Western Reserve University; May 2011.
2022
Chlebek C.
Identification of Novel Cellular Pathways Involved in Bone Mechanotransduction Using Transcriptomics
[PhD thesis]. Ithaca, NY: Cornell University; May 2022.
2018
Xie S.
Characterisation of Time-Dependent Mechanical Behaviour of Trabecular Bone and Its Constituents
[PhD thesis]. Edinburgh, Scotland: University of Edinburgh; 2018.
1996
Silva MJ.
Predicting the Failure Behavior of the Human Vertebral Body
[PhD thesis]. Cambridge, MA: Massachusetts Institute of Technology; February 1996.
2008
Crookshank MCM.
Optimizing Fracture Management: Correlating the Physical and Mechanical Properties of Bone to Computed Tomography to Generate an Estimate of Bone Quality
[Master's thesis]. Queen's University; January 2008.
2018
Diesbourg TL.
Age-Related Differences in Passive Trunk Stiffness, Seated Spine Postures, and Muscle Recruitment Patterns
[PhD thesis]. Queen's University; October 2018.
2017
Fung A.
Experimental Validation of Finite Element Predicted Bone Strain in the Human Metatarsal
[Master's thesis]. Calgary, AB: University of Calgary; April 2017.
2002
Morgan EF-i.
The Dependence on Anatomic Site of Trabecular Bone Structure-Function Relationships
[PhD thesis]. Berkeley, CA: Berkeley, University of California; 2002.
2008
Bevill GR.
Micromechanical Modeling of Failure in Trabecular Bone
[PhD thesis]. Berkeley, CA: Berkeley, University of California; 2008.
2010
Fields AJ.
Trabecular Microarchitecture, Endplate Failure, and the Biomechanics of Human Vertebral Fractures
[PhD thesis]. Berkeley, CA: Berkeley, University of California; 2010.
2013
Wang Y-K.
Multi-Level Micromechanical Modeling of Bone Tissues
[PhD thesis]. Los Angeles, CA: Los Angeles, University of California; 2013.
2012
Evdokimenko E.
Investigation Into Mechanical Properties of Bone and Its Main Constituents
[PhD thesis]. San Diego (UCSD), University of California; 2012.
1991
Choi K.
The Micro Mechanical Properties of Bone Tissue
[PhD thesis]. University of Michigan; 1991.
1995
Grimm MJ.
Ultrasound Propagation Through the Calcaneus: Dependence on “Bone Quality” and Prediction by Biot's Theory
[PhD thesis]. Philadelphia, PA: University of Pennsylvania; 1995.
2008
Burgers TA.
Press-Fit Fixation and Viscoelastic Response of a Bone-Implant Interface in the Distal Femur
[PhD thesis]. University of Wisconsin – Madison; 2008.
2009
García-Rodríguez S.
Mechanical Behavior of Trabecular Bone
[PhD thesis]. University of Wisconsin – Madison; 2009.