Bone remodelling algorithms incorporating both strain and microdamage stimuli.
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[1] E. Radin,et al. Bone remodeling in response to in vivo fatigue microdamage. , 1985, Journal of biomechanics.
[2] P. Prendergast. Mechanics Applied to Skeletal Ontogeny and Phylogeny , 2002 .
[3] Sheldon Weinbaum,et al. Mechanotransduction and strain amplification in osteocyte cell processes. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[4] P J Prendergast,et al. Microdamage and osteocyte-lacuna strain in bone: a microstructural finite element analysis. , 1996, Journal of biomechanical engineering.
[5] T J Chambers,et al. The role of prostaglandins and nitric oxide in the response of bone to mechanical forces. , 1999, Osteoarthritis and cartilage.
[6] D. Taylor.,et al. Visualisation of three‐dimensional microcracks in compact bone , 2000, Journal of anatomy.
[7] P J Prendergast,et al. Prediction of bone adaptation using damage accumulation. , 1994, Journal of biomechanics.
[8] H. Grootenboer,et al. Adaptive bone-remodeling theory applied to prosthetic-design analysis. , 1987, Journal of biomechanics.
[9] H J Donahue,et al. Substrate deformation levels associated with routine physical activity are less stimulatory to bone cells relative to loading-induced oscillatory fluid flow. , 2000, Journal of biomechanical engineering.
[10] Theo H Smit,et al. Strain-derived canalicular fluid flow regulates osteoclast activity in a remodelling osteon--a proposal. , 2003, Journal of biomechanics.
[11] L. Lanyon,et al. Cellular responses to mechanical loading in vitro , 1990, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[12] S. Cowin,et al. Bone remodeling I: theory of adaptive elasticity , 1976 .
[13] B. Noble,et al. Bone microdamage and cell apoptosis. , 2003, European cells & materials.
[14] W C Hayes,et al. Fatigue life of compact bone--II. Effects of microstructure and density. , 1976, Journal of biomechanics.
[15] J. Currey. The effect of porosity and mineral content on the Young's modulus of elasticity of compact bone. , 1988, Journal of biomechanics.
[16] Charles Oxnard,et al. Bone Structure and Remodelling. , 1995 .
[17] S. Cowin,et al. A case for bone canaliculi as the anatomical site of strain generated potentials. , 1995, Journal of biomechanics.
[18] A Staines,et al. Bone adaptation to load: microdamage as a stimulus for bone remodelling , 2002, Journal of anatomy.
[19] C. Rubin,et al. Quantifying the strain history of bone: spatial uniformity and self-similarity of low-magnitude strains. , 2000, Journal of biomechanics.
[20] Microstructural strain near osteocyte lacuna in cortical bone in vitro. , 2002, Journal of musculoskeletal & neuronal interactions.
[21] R. Martin,et al. Toward a unifying theory of bone remodeling. , 2000, Bone.
[22] P J Prendergast,et al. Stress-concentrating effect of resorption lacunae in trabecular bone. , 2006, Journal of biomechanics.
[23] M. H. Aliabadi,et al. Advances in Fracture and Damage Mechanics VI , 2007 .
[24] Rik Huiskes,et al. Effects of mechanical forces on maintenance and adaptation of form in trabecular bone , 2000, Nature.
[25] L. Bonewald,et al. Osteocytes: a proposed multifunctional bone cell. , 2002, Journal of musculoskeletal & neuronal interactions.
[26] Jwo Pan,et al. Fatigue Testing and Analysis: Theory and Practice , 2004 .
[27] A. M. Parfitt,et al. The cellular basis of bone remodeling: The quantum concept reexamined in light of recent advances in the cell biology of bone , 2006, Calcified Tissue International.
[28] H Weinans,et al. A physiological approach to the simulation of bone remodeling as a self-organizational control process. , 1994, Journal of biomechanics.
[29] S. Cowin,et al. A model for strain amplification in the actin cytoskeleton of osteocytes due to fluid drag on pericellular matrix. , 2001, Journal of biomechanics.
[30] C. G. Lyons,et al. Strength of cancellous bone trabecular tissue from normal, ovariectomized and drug-treated rats over the course of ageing. , 2006, Bone.
[31] D B Burr,et al. Increased intracortical remodeling following fatigue damage. , 1993, Bone.
[32] J. Klein-Nulend,et al. MECHANOTRANSDUCTION IN BONE : ROLE OF THE LACUNOCANALICULAR NETWORK , 1999 .
[33] Elisabeth H Burger,et al. Interactive effects of PTH and mechanical stress on nitric oxide and PGE2 production by primary mouse osteoblastic cells. , 2003, American journal of physiology. Endocrinology and metabolism.
[34] D. Taylor.,et al. The cellular transducer in damage-stimulated bone remodelling: a theoretical investigation using fracture mechanics. , 2003, Journal of theoretical biology.
[35] T. Gunnlaugsson,et al. Detecting microdamage in bone , 2003, Journal of anatomy.
[36] D. Burr,et al. Mechanotransduction in bone: osteoblasts are more responsive to fluid forces than mechanical strain. , 1997, The American journal of physiology.
[37] L. Bonewald. Establishment and characterization of an osteocyte-like cell line, MLO-Y4 , 1999, Journal of Bone and Mineral Metabolism.
[38] D P Fyhrie,et al. Trabecular bone density and loading history: regulation of connective tissue biology by mechanical energy. , 1987, Journal of biomechanics.
[39] R Huiskes,et al. Osteocytes and bone lining cells: which are the best candidates for mechano-sensors in cancellous bone? , 1997, Bone.
[40] S. Cowin. Bone mechanics handbook , 2001 .
[41] J. McGarry,et al. The effect of cytoskeletal disruption on pulsatile fluid flow-induced nitric oxide and prostaglandin E2 release in osteocytes and osteoblasts. , 2005, Biochemical and biophysical research communications.
[42] R. Martin,et al. Is all cortical bone remodeling initiated by microdamage? , 2002, Bone.