Tissue-Level Mechanical Properties of Bone Contributing to Fracture Risk
暂无分享,去创建一个
[1] M. Bouxsein,et al. Comparison of cyclic and impact-based reference point indentation measurements in human cadaveric tibia. , 2018, Bone.
[2] P. Zysset,et al. Mechanical properties of cortical bone and their relationships with age, gender, composition and microindentation properties in the elderly. , 2016, Bone.
[3] Adam C. Abraham,et al. Microstructural and compositional contributions towards the mechanical behavior of aging human bone measured by cyclic and impact reference point indentation. , 2016, Bone.
[4] Jean X. Jiang,et al. Coupling Effect of Water and Proteoglycans on the In Situ Toughness of Bone , 2016, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[5] R. Recker,et al. Examining the Relationships Between Bone Tissue Composition, Compositional Heterogeneity, and Fragility Fracture: A Matched Case‐Controlled FTIRI Study , 2016, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[6] William R. Lloyd,et al. Effect of anti-sclerostin therapy and osteogenesis imperfecta on tissue-level properties in growing and adult mice while controlling for tissue age. , 2016, Bone.
[7] E. Donnelly,et al. Altered distributions of bone tissue mineral and collagen properties in women with fragility fractures. , 2016, Bone.
[8] C. Cooper,et al. Site‐Dependent Reference Point Microindentation Complements Clinical Measures for Improved Fracture Risk Assessment at the Human Femoral Neck , 2016, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[9] A. Díez-Pérez,et al. Bone material strength is associated with areal BMD but not with prevalent fractures in older women , 2015, Osteoporosis International.
[10] Adam C. Abraham,et al. Multiscale Predictors of Femoral Neck In Situ Strength in Aging Women: Contributions of BMD, Cortical Porosity, Reference Point Indentation, and Nonenzymatic Glycation , 2015, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[11] A. Díez-Pérez,et al. Are the High Hip Fracture Rates Among Norwegian Women Explained by Impaired Bone Material Properties? , 2015, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[12] Joseph M. Wallace,et al. True Gold or Pyrite: A Review of Reference Point Indentation for Assessing Bone Mechanical Properties In Vivo , 2015, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[13] A. Díez-Pérez,et al. Bone Tissue Properties Measurement by Reference Point Indentation in Glucocorticoid‐Induced Osteoporosis , 2015, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[14] Y. Shibata,et al. Bone Aging by Advanced Glycation End Products , 2015, Journal of dental research.
[15] Alexander J. Makowski,et al. Identifying Novel Clinical Surrogates to Assess Human Bone Fracture Toughness , 2015, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[16] H. Gong,et al. Multi-level femoral morphology and mechanical properties of rats of different ages. , 2015, Bone.
[17] Yang Zhang,et al. Time Related Changes of Mineral and Collagen and Their Roles in Cortical Bone Mechanics of Ovariectomized Rabbits , 2015, PloS one.
[18] S. Papapoulos,et al. Bone material strength as measured by microindentation in vivo is decreased in patients with fragility fractures independently of bone mineral density. , 2015, The Journal of clinical endocrinology and metabolism.
[19] V. Bousson,et al. Cortical Bone Mineralization in the Human Femoral Neck in Cases and Controls from Synchrotron Radiation Study , 2015, Cell Biochemistry and Biophysics.
[20] H. Gong,et al. Age-related regional deterioration patterns and changes in nanoscale characterizations of trabeculae in the femoral head , 2015, Experimental Gerontology.
[21] J. Jurvelin,et al. Relationships between tissue composition and viscoelastic properties in human trabecular bone. , 2015, Journal of biomechanics.
[22] Punam K. Saha,et al. 7 Tesla MRI of bone microarchitecture discriminates between women without and with fragility fractures who do not differ by bone mineral density , 2015, Journal of Bone and Mineral Metabolism.
[23] Jan L. Bruse,et al. Reference point indentation is not indicative of whole mouse bone measures of stress intensity fracture toughness , 2014, Bone.
[24] Wurihan,et al. Strain-rate stiffening of cortical bone: observations and implications from nanoindentation experiments. , 2014, Nanoscale.
[25] J. Nyman,et al. Insights into reference point indentation involving human cortical bone: sensitivity to tissue anisotropy and mechanical behavior. , 2014, Journal of the mechanical behavior of biomedical materials.
[26] P. Zysset,et al. In situ micropillar compression reveals superior strength and ductility but an absence of damage in lamellar bone. , 2014, Nature materials.
[27] M. Djuric,et al. Nano-structural, compositional and micro-architectural signs of cortical bone fragility at the superolateral femoral neck in elderly hip fracture patients vs. healthy aged controls , 2014, Experimental Gerontology.
[28] P. Fratzl,et al. Changes in the Degree of Mineralization with Osteoporosis and its Treatment , 2014, Current Osteoporosis Reports.
[29] A. Boskey,et al. Reduced Tissue-Level Stiffness and Mineralization in Osteoporotic Cancellous Bone , 2014, Calcified Tissue International.
[30] O. Mäkitie,et al. Increased Heterogeneity of Bone Matrix Mineralization in Pediatric Patients Prone to Fractures: A Biopsy Study , 2014, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[31] Ravinder R Regatte,et al. Finite element analysis applied to 3-T MR imaging of proximal femur microarchitecture: lower bone strength in patients with fragility fractures compared with control subjects. , 2014, Radiology.
[32] S. Khosla,et al. In Vivo Assessment of Bone Quality in Postmenopausal Women With Type 2 Diabetes , 2014, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[33] X. Guo,et al. Intervention timing of strontium treatment on estrogen depletion‐induced osteoporosis in rats: Bone microstructure and mechanics , 2014, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[34] M. Ito,et al. Classification of women with and without hip fracture based on quantitative computed tomography and finite element analysis , 2014, Osteoporosis International.
[35] A. Boskey,et al. Bone composition: relationship to bone fragility and antiosteoporotic drug effects. , 2013, BoneKEy reports.
[36] G. Pharr,et al. On the measurement of energy dissipation using nanoindentation and the continuous stiffness measurement technique , 2013 .
[37] R. Rizzoli,et al. Fracture history of healthy premenopausal women is associated with a reduction of cortical microstructural components at the distal radius. , 2013, Bone.
[38] Matthew R Allen,et al. Reference-point indentation correlates with bone toughness assessed using whole-bone traditional mechanical testing. , 2013, Bone.
[39] P. Zysset,et al. High resolution quantitative computed tomography-based assessment of trabecular microstructure and strength estimates by finite-element analysis of the spine, but not DXA, reflects vertebral fracture status in men with glucocorticoid-induced osteoporosis. , 2013, Bone.
[40] S. Huja,et al. Effect of estrogen deficiency on regional variation of a viscoelastic tissue property of bone. , 2013, Journal of biomechanics.
[41] A. Díez-Pérez,et al. Microindentation for in vivo measurement of bone tissue material properties in atypical femoral fracture patients and controls , 2013, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[42] A. Boskey,et 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 , 2013, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[43] H. Macdonald,et al. Women with previous fragility fractures can be classified based on bone microarchitecture and finite element analysis measured with HR-pQCT , 2013, Osteoporosis International.
[44] D. Vashishth,et al. Extended Finite Element models of introcortical porosity and heterogeneity in cortical bone. , 2012, Computational materials science.
[45] K. Jepsen,et al. Assessment of lamellar level properties in mouse bone utilizing a novel spherical nanoindentation data analysis method. , 2012, Journal of the mechanical behavior of biomedical materials.
[46] S. Stover,et al. Relating micromechanical properties and mineral densities in severely suppressed bone turnover patients, osteoporotic patients, and normal subjects. , 2012, Bone.
[47] G. Niebur,et al. Viscoelastic properties of human cortical bone tissue depend on gender and elastic modulus , 2012, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[48] D. Vashishth,et al. Effects of Bone Matrix Proteins on Fracture and Fragility in Osteoporosis , 2012, Current Osteoporosis Reports.
[49] Alexander J. Makowski,et al. The Contribution of the Extracellular Matrix to the Fracture Resistance of Bone , 2012, Current Osteoporosis Reports.
[50] Daniel C Bridges,et al. A new device for performing reference point indentation without a reference probe. , 2012, The Review of scientific instruments.
[51] M. Morris,et al. Age-specific profiles of tissue-level composition and mechanical properties in murine cortical bone. , 2012, Bone.
[52] N. Fazzalari,et al. Increased proportion of hypermineralized osteocyte lacunae in osteoporotic and osteoarthritic human trabecular bone: implications for bone remodeling. , 2012, Bone.
[53] Philip A. Yuya,et al. Intrinsic Material Properties of Trabecular Bone by Nanoindentation Testing of Biopsies Taken from Healthy Women Before and After Menopause , 2012, Calcified Tissue International.
[54] X. Guo,et al. Individual trabecula segmentation (ITS)‐based morphological analyses and microfinite element analysis of HR‐pQCT images discriminate postmenopausal fragility fractures independent of DXA measurements , 2012, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[55] Vladimir Zivkovic,et al. Age-related deterioration in trabecular bone mechanical properties at material level: Nanoindentation study of the femoral neck in women by using AFM , 2012, Experimental Gerontology.
[56] Xiaodun Wang,et al. Mechanistic modeling of a nanoscratch test for determination of in situ toughness of bone. , 2012, Journal of the mechanical behavior of biomedical materials.
[57] S. Stover,et al. Mechanical property and tissue mineral density differences among severely suppressed bone turnover (SSBT) patients, osteoporotic patients, and normal subjects. , 2011, Bone.
[58] J. Laredo,et al. Greater tissue mineralization heterogeneity in femoral neck cortex from hip-fractured females than controls. A microradiographic study. , 2011, Bone.
[59] A. Boskey,et al. Microstructure and nanomechanical properties in osteons relate to tissue and animal age. , 2011, Journal of biomechanics.
[60] H. Helminen,et al. Rabbit cortical bone tissue increases its elastic stiffness but becomes less viscoelastic with age. , 2010, Bone.
[61] Ego Seeman,et al. Intracortical remodelling and porosity in the distal radius and post-mortem femurs of women: a cross-sectional study , 2010, The Lancet.
[62] Daniel C Bridges,et al. Microindentation for In Vivo Measurement of Bone Tissue Mechanical Properties in Humans , 2010, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[63] P. Zysset,et al. Rehydration of vertebral trabecular bone: influences on its anisotropy, its stiffness and the indentation work with a view to age, gender and vertebral level. , 2010, Bone.
[64] S. Huja,et al. Relationships of viscosity with contact hardness and modulus of bone matrix measured by nanoindentation. , 2010, Journal of biomechanical engineering.
[65] Eve Donnelly,et al. Effects of tissue age on bone tissue material composition and nanomechanical properties in the rat cortex. , 2009, Journal of biomedical materials research. Part A.
[66] P. Thurner. Atomic force microscopy and indentation force measurement of bone. , 2009, Wiley interdisciplinary reviews. Nanomedicine and nanobiotechnology.
[67] D. Fyhrie,et al. Trabecular packet-level lamellar density patterns differ by fracture status and bone formation rate in white females. , 2009, Bone.
[68] M. Weber,et al. Combination of Nanoindentation and Quantitative Backscattered Electron Imaging Revealed Altered Bone Material Properties Associated with Femoral Neck Fragility , 2009, Calcified Tissue International.
[69] R. Recker,et al. Use of FTIR Spectroscopic Imaging to Identify Parameters Associated With Fragility Fracture , 2009, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[70] P. K. Zysset,et al. Indentation of bone tissue: a short review , 2009, Osteoporosis International.
[71] P. Delmas,et al. Influence of remodeling on the mineralization of bone tissue , 2009, Osteoporosis International.
[72] F. O'Brien,et al. Biomechanical properties across trabeculae from the proximal femur of normal and ovariectomised sheep. , 2009, Journal of biomechanics.
[73] Nancy Lane,et al. Finite Element Analysis of the Proximal Femur and Hip Fracture Risk in Older Men , 2009, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[74] Kozo Nakamura,et al. Assessment of vertebral fracture risk and therapeutic effects of alendronate in postmenopausal women using a quantitative computed tomography-based nonlinear finite element method , 2009, Osteoporosis International.
[75] B. Snyder,et al. Bone Volume Fraction Explains the Variation in Strength and Stiffness of Cancellous Bone Affected by Metastatic Cancer and Osteoporosis , 2008, Calcified Tissue International.
[76] Gladius Lewis,et al. The use of nanoindentation for characterizing the properties of mineralized hard tissues: state-of-the art review. , 2008, Journal of biomedical materials research. Part B, Applied biomaterials.
[77] Peter Zioupos,et al. Fatigue strength of human cortical bone: age, physical, and material heterogeneity effects. , 2008, Journal of biomedical materials research. Part A.
[78] Morton B. Brown,et al. The bone diagnostic instrument II: indentation distance increase. , 2008, The Review of scientific instruments.
[79] E. Lavernia,et al. Human iliac crest cancellous bone elastic modulus and hardness differ with bone formation rate per bone surface but not by existence of prevalent vertebral fracture. , 2008, Journal of biomedical materials research. Part B, Applied biomaterials.
[80] George M. Pharr,et al. Nanoindentation and the dynamic characterization of viscoelastic solids , 2008 .
[81] H. Beard,et al. Quantitative backscattered electron imaging of bone in proximal femur fragility fracture and medical illness , 2008, Journal of microscopy.
[82] S. Judex,et al. Accretion of Bone Quantity and Quality in the Developing Mouse Skeleton , 2007, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[83] J. Nyman,et al. Age‐related factors affecting the postyield energy dissipation of human cortical bone , 2007, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[84] H. Genant,et al. A comparison of spinal quantitative computed tomography with dual energy X-ray absorptiometry in European women with vertebral and nonvertebral fractures , 2001, Calcified Tissue International.
[85] O. Akkus,et al. The compositional and physicochemical homogeneity of male femoral cortex increases after the sixth decade. , 2006, Bone.
[86] P. Fratzl,et al. Effects of 3‐ and 5‐Year Treatment With Risedronate on Bone Mineralization Density Distribution in Triple Biopsies of the Iliac Crest in Postmenopausal Women , 2006, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[87] R. Rizzoli,et al. Intrinsic bone tissue properties in adult rat vertebrae: modulation by dietary protein. , 2005, Bone.
[88] A. Boyde,et al. Bone mineralization density and femoral neck fragility. , 2004, Bone.
[89] J. Houde,et al. Correlation of bone mineral density and femoral neck hardness in bovine and human samples , 1995, Calcified Tissue International.
[90] D. Fyhrie,et al. Effects of vertebral bone fragility and bone formation rate on the mineralization levels of cancellous bone from white females. , 2003, Bone.
[91] G. Pharr,et al. Microstructural elasticity and regional heterogeneity in human femoral bone of various ages examined by nano-indentation. , 2002, Journal of biomechanics.
[92] S. Goldstein,et al. Age, gender, and bone lamellae elastic moduli , 2000, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[93] S A Goldstein,et al. Vertebral trabecular bone microscopic tissue elastic modulus and hardness do not change in ovariectomized rats , 2000, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[94] P Zioupos,et al. Changes in the stiffness, strength, and toughness of human cortical bone with age. , 1998, Bone.
[95] Mark J. Meisner,et al. Heterogeneous materials—Scaling phenomena relevant to fracture and to fracture toughness , 1997 .
[96] J A McGeough,et al. Age-related changes in the tensile properties of cortical bone. The relative importance of changes in porosity, mineralization, and microstructure. , 1993, The Journal of bone and joint surgery. American volume.
[97] G. Pharr,et al. An improved technique for determining hardness and elastic modulus using load and displacement sensing indentation experiments , 1992 .
[98] M Martens,et al. Aging of bone tissue: mechanical properties. , 1976, The Journal of bone and joint surgery. American volume.