Mechanical loading of mouse caudal vertebrae increases trabecular and cortical bone mass-dependence on dose and genotype
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R. Müller | F. Weber | I. Bab | M. Ehrbar | Elad Wasserman | D. Webster
[1] R. Müller,et al. In vivo micro computed tomography allows monitoring of load induced microstructural bone adaptation , 2009 .
[2] B. Frenkel,et al. Lef1 Haploinsufficient Mice Display a Low Turnover and Low Bone Mass Phenotype in a Gender- and Age-Specific Manner , 2009, PloS one.
[3] Steven K Boyd,et al. Postpubertal Architectural Developmental Patterns Differ Between the L3 Vertebra and Proximal Tibia in Three Inbred Strains of Mice , 2008, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[4] Ralph Müller,et al. A novel in vivo mouse model for mechanically stimulated bone adaptation – a combined experimental and computational validation study , 2008, Computer methods in biomechanics and biomedical engineering.
[5] Ralph Müller,et al. Automated compartmental analysis for high-throughput skeletal phenotyping in femora of genetic mouse models. , 2007, Bone.
[6] C. Rubin,et al. Low‐level accelerations applied in the absence of weight bearing can enhance trabecular bone formation , 2007, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[7] Ralph Müller,et al. Monitoring individual morphological changes over time in ovariectomized rats by in vivo micro-computed tomography. , 2006, Bone.
[8] S. Mohan,et al. Identification of genetic loci that regulate bone adaptive response to mechanical loading in C57BL/6J and C3H/HeJ mice intercross. , 2006, Bone.
[9] K. Lau,et al. Up-regulation of the Wnt, Estrogen Receptor, Insulin-like Growth Factor-I, and Bone Morphogenetic Protein Pathways in C57BL/6J Osteoblasts as Opposed to C3H/HeJ Osteoblasts in Part Contributes to the Differential Anabolic Response to Fluid Shear* , 2006, Journal of Biological Chemistry.
[10] B. Frenkel,et al. Peripheral cannabinoid receptor, CB2, regulates bone mass. , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[11] Felix Eckstein,et al. Non-invasive axial loading of mouse tibiae increases cortical bone formation and modifies trabecular organization: a new model to study cortical and cancellous compartments in a single loaded element. , 2005, Bone.
[12] Subburaman Mohan,et al. Global gene expression analysis in the bones reveals involvement of several novel genes and pathways in mediating an anabolic response of mechanical loading in mice , 2005, Journal of cellular biochemistry.
[13] S. Mohan,et al. Mechanical loading-induced gene expression and BMD changes are different in two inbred mouse strains. , 2005, Journal of applied physiology.
[14] I. Goshen,et al. Central IL-1 receptor signaling regulates bone growth and mass. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[15] T. Wright,et al. Loading induces site-specific increases in mineral content assessed by microcomputed tomography of the mouse tibia. , 2005, Bone.
[16] J. Rho,et al. Bone Intrinsic Material Properties in Three Inbred Mouse Strains , 2004, Calcified Tissue International.
[17] Daniel L. Koller,et al. Genetic Effects for Femoral Biomechanics, Structure, and Density in C57BL/6J and C3H/HeJ Inbred Mouse Strains , 2003, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[18] A. Robling,et al. Mechanotransduction in bone: genetic effects on mechanosensitivity in mice. , 2002, Bone.
[19] X. Guo,et al. Quantification of a rat tail vertebra model for trabecular bone adaptation studies. , 2002, Journal of biomechanics.
[20] C. Rubin,et al. Inhibition of osteopenia by low magnitude, high-frequency mechanical stimuli. , 2001, Drug discovery today.
[21] G A Churchill,et al. Quantitative Trait Loci for Femoral and Lumbar Vertebral Bone Mineral Density in C57BL/6J and C3H/HeJ Inbred Strains of Mice , 2001, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[22] G. Churchill,et al. Quantitative Trait Loci for Femoral and Lumbar Vertebral Bone Mineral Density in C57BL/6J and C3H/HeJ Inbred Strains of Mice , 2001 .
[23] R Müller,et al. Genetic Regulation of Cortical and Trabecular Bone Strength and Microstructure in Inbred Strains of Mice , 2000, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[24] L. Donahue,et al. Exercise and Mechanical Loading Increase Periosteal Bone Formation and Whole Bone Strength in C57BL/6J Mice but Not in C3H/Hej Mice , 2000, Calcified Tissue International.
[25] O. Verborgt,et al. Loss of Osteocyte Integrity in Association with Microdamage and Bone Remodeling After Fatigue In Vivo , 2000, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[26] Matthew J. Silva,et al. Growing C57Bl/6 Mice Increase Whole Bone Mechanical Properties by Increasing Geometric and Material Properties , 1999, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[27] P. Rüegsegger,et al. Direct Three‐Dimensional Morphometric Analysis of Human Cancellous Bone: Microstructural Data from Spine, Femur, Iliac Crest, and Calcaneus , 1999, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[28] R. Recker,et al. Bone Response to In Vivo Mechanical Loading in Two Breeds of Mice , 1998, Calcified Tissue International.
[29] W. Evans. Exercise and nutritional needs of elderly people: effects on muscle and bone. , 1998, Gerodontology.
[30] E. Burger,et al. DNA fragmentation during bone formation in neonatal rodents assessed by transferase‐mediated end labeling , 1996, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[31] A A Biewener,et al. Adaptive changes in trabecular architecture in relation to functional strain patterns and disuse. , 1996, Bone.
[32] C. Turner,et al. Mechanotransduction and the functional response of bone to mechanical strain , 1995, Calcified Tissue International.
[33] R. Marcus. Relationship of age-related decreases in muscle mass and strength to skeletal status. , 1995, The journals of gerontology. Series A, Biological sciences and medical sciences.
[34] M Evans,et al. Induction of bone formation in rat tail vertebrae by mechanical loading. , 1993, Bone and mineral.
[35] A. Parfitt. Bone histomorphometry: Proposed system for standardization of nomenclature, symbols, and units , 1988, Calcified Tissue International.
[36] Frost Hm,et al. The mechanostat: a proposed pathogenic mechanism of osteoporoses and the bone mass effects of mechanical and nonmechanical agents. , 1987 .
[37] Clinton T. Rubin,et al. Regulation of bone mass by mechanical strain magnitude , 1985, Calcified Tissue International.
[38] D. Cullen,et al. Site specific bone adaptation response to mechanical loading. , 2008, Journal of musculoskeletal & neuronal interactions.
[39] S. Judex,et al. High-frequency oscillatory motions enhance the simulated mechanical properties of non-weight bearing trabecular bone. , 2007, Journal of biomechanics.
[40] Kenny Q. Ye,et al. Adaptations of Trabecular Bone to Low Magnitude Vibrations Result in More Uniform Stress and Strain Under Load , 2004, Annals of Biomedical Engineering.
[41] H. Frost,et al. The mechanostat: a proposed pathogenic mechanism of osteoporoses and the bone mass effects of mechanical and nonmechanical agents. , 1987, Bone and mineral.
[42] Richard A. Brand,et al. The Scientific Basis of Orthopaedics , 1979 .