Journal of Biomechanics
Volume 43, Issue 3 , Pages 387-396 , 10 February 2010

Principles of determination and verification of muscle forces in the human musculoskeletal system: Muscle forces to minimise bending stress

,Accepted 16 September 2009.

References 

  1. Andrews JG. The functional roles of the hamstrings and quadriceps during cycling: Lombard's Paradox revisited. Journal of Biomechanics. 1987;20:565–575
  2. Baca V, Horak Z, Mikulenka P, Dzupa V. Comparison of an inhomogeneous orthotropic and isotropic material models used for FE analyses. Medical Engineering and Physics. 2007;30:924–930
  3. Bergmann G. In vivo Messung der Belastung von Hüftimplantaten. Berlin: Dr. Köster Verlag; 1997;
  4. Boyce TM, Fyhrie DP, Radin EL, Schaffler MB. Damage and strain mode associations in human compact bone bending fatigue. Journal of Orthopaedic Research. 1998;16:322–329
  5. Brand RA, Crowninshield RD, Wittstock CE, Pedersen DR, Clark CR, van Krieken FM. A model of lower extremity muscular anatomy. Journal of Biomechanical Engineering. 1982;104:304–310
  6. Brand RA, Pedersen DR, Friederich JA. The sensitivity of muscle force predictions to changes in physiologic cross-sectional area. Journal of Biomechanics. 1986;19:589–596
  7. Ciarelli MJ, Goldstein SA, Kuhn JL, Cody DD, Brown MB. Evaluation of orthogonal mechanical properties and density of human trabecular bone. Journal of Orthopaedic Research. 1991;9:674–682
  8. Cowin SC. The mechanical and stress adaptive properties of bone. Annals of Biomedical Engineering. 1983;11:263–295
  9. Currey JD. The many adaptations of bone. Journal of Biomechanics. 2003;36:1487–1495
  10. Duda GN, Heller M, Albinger J, Schulz O, Schneider E, Claes L. Influence of muscle forces on femoral strain distribution. Journal of Biomechanics. 1998;31:841–846
  11. Farkas A, Wilson MJ, Hayner JC. An anatomical study of the mechanics, pathology, and healing of fracture of femoral neck. Journal of Bone and Joint Surgery. 1948;30A:53–69
  12. Finni T, Komi PV, Lukkariniemi J. Achilles tendon loading during walking: application of a novel optic fiber technique. European Journal of Applied Physiology and Occupational Physiology. 1998;77:289–291
  13. Fischer KJ, Jacobs CR, Carter DR. Computational method for determination of bone and joint loads using bone density distributions. Journal of Biomechanics. 1995;28:1127–1135
  14. Frost HM. Skeletal structural adaptations to mechanical usage (SATMU): 1. Redefining Wolff's Law: the bone modeling problem. The Anatomical Record. 1990;226:403–413
  15. Frost HM. The mechanostat: a proposed pathogenic mechanism of osteoporoses and the bone mass effects of mechanical and nonmechanical agents. Bone and Mineral. 1987;2:73–85
  16. Frost HM. Vital biomechanics: proposed general concepts for skeletal adaptations to mechanical usage. Calcified Tissue International. 1988;42:145–156
  17. Garden RS. The structure and function of the proximal end of the femur. Journal of Bone and Joint Surgery. 1961;43B:576–589
  18. Gregor RJ, Cavanagh PR, LaFortune M. Knee flexor moments during propulsion in cycling-a creative solution to Lombard's Paradox. Journal of Biomechanics. 1985;18:307–316
  19. Hems T, Tillmann B. Tendon entheses of the human masticatory muscles. Anatomical Embryology. 2000;202:201–208
  20. Hert J. A new attempt at the interpretation of the functional architecture of the cancellous bone. Journal of Biomechanics. 1994;27:239–242
  21. Huijing PA, Baan GC. Myofascial force transmission via extramuscular pathways occurs between antagonistic muscles. Cells Tissues Organs. 2008;188:400–414
  22. Ivanenko YP, Poppele RE, Lacquaniti F. Five basic muscle activation patterns account for muscle activity during human locomotion. Journal of Physiology. 2004;556:267–282
  23. Jansen M. On boneformation. Manchester: The University Press; 1920;
  24. Kaspar D, Seidl W, Neidlinger-Wilke C, Ignatius A, Claes L. Dynamic cell stretching increases human osteoblast proliferation and CICP synthesis but decreases osteocalcin synthesis and alkaline phosphatase activity. Journal of Biomechanics. 2000;33:45–51
  25. Knese K-H, Biermann H. Die Knochenbildung an Sehnen- und Bandansätzen im Bereich ursprünglich chondraler Apophysen. Zeitschrift für Zellforschung. 1958;49:142–187
  26. Komi PV. Relevance of in vivo force measurements to human biomechanics. Journal of Biomechanics. 1990;23:23–25
  27. Kummer B. Biomechanik. Köln: Deutsche Ärzte-Verlag; 2005;
  28. Lenaerts G, De Groote F, Demeulenaere B, Mulier M, Van der Perre G, Spaepen A, et al. Subject-specific hip geometry affects predicted hip joint contact forces during gait. Journal of Biomechanics. 2008;41:1243–1252
  29. Liskova M, Hert J. Reaction of bone to mechanical stimuli. Part 2. Periosteal and endosteal reaction of tibial diaphysis in rabbit to intermittent loading. Folia Morphologica. 1971;19:310–317
  30. Lu T-W, Taylor SJG, O’Connor JJ, Walker PS. Influence of muscle activity on the forces in the femur: an in vivo study. Journal of Biomechanics. 1997;30:1101–1106
  31. Mach DB, Rogers SD, Sabino MC, Luger NM, Schwei MJ, Pomonis JD, et al. Origins of skeletal pain: sensory and sympathetic innervation of the mouse femur. Neuroscience. 2002;113:155–166
  32. Marenzana M, Chenu C. Sympathetic nervous system and bone adaptive response to its mechanical environment. Journal of Musculoskeletal Neuronal Interaction. 2008;8:111–120
  33. Martens, A.M., 1985. Mechanical properties of human bone. Ph.D. thesis, University of Louvain, Leuven.
  34. McCredie J. Nerves in bone: the silent partners. Skeletal Radiology. 2007;36:473–475
  35. Morse CI, Thom JM, Reeves ND, Birch KM, Narici MV. In vivo physiological cross-sectional area and specific force are reduced in the gastrocnemius of elderly men. Journal of Applied Physiology: Respiratory, Environmental and Exercise Physiology. 2005;99:1050–1055
  36. Möser, M., Hein, W., 1992. The bone as a compression member in a cable tensioning device: the example of the hip. In: Regling, G., de Gruyter, W. (Eds.), Wolff's Law and Connective Tissue Regulation, Berlin, NY, pp. 81–92.
  37. Noesberger B, Eichenberger AR. Overuse injuries of the hip and snapping hip syndrome. Operative Techniques in Sports Medicine. 1997;5:138–142
  38. Pahr DH, Zysset PK. From high-resolution CT data to finite element models: development of an integrated modular framework. Computer Methods in Biomechanics and Biomedical Engineering. 2008;10:45–57
  39. Pauwels F. Gesammelte Abhandlungen zur funktionellen Anatomie des Bewegungsapparates. Berlin Heidelberg New York: Springer; 1965;
  40. Pourcelot P, Defontaine M, Ravary B, Lemâtre M, Crevier-Denoix N. A non-invasive method of tendon force measurement. Journal of Biomechanics. 2005;38:2124–2129
  41. Prilutski BI, Raitsin LM, Petrova LN. Comparison of mechanical energy expenditure of joint moments and muscle forces during human locomotion. Journal of Biomechanics. 1996;29:405–415
  42. Pussel, V., 2000. Biomechanische Untersuchung eines Hüftgelenkimplantates mit Hilfe eines dreidimensionalen Computermodells. Ph.D. thesis, Eberhard-Karls-Universität, Tübingen.
  43. Rath B, Nam J, Knobloch TJ, Lannutti JJ, Agarwal S. Compressive forces induce osteogenic gene expression in calvarial osteoblasts. Journal of Biomechanics. 2008;41:1095–1103
  44. Reilly DT, Burstein AH. The elastic and ultimate properties of compact bone tissue. Journal of Biomechanics. 1975;8:393–405
  45. Rho JY, Hobatho MC, Ashman RB. Relation of mechanical properties to density and CT numbers in human bone. Medical Engineering and Physics. 1995;17:347–355
  46. Rossmann, T., Witzel, U., Welman, J., 2001. Biomechanics of the skull in Proterosuchus, Abstract. Journal of Morphology 248.
  47. Rubin CT, Lanyon LE. Regulation of bone formation by applied dynamic loads. Journal of Bone and Joint Surgery. 1984;66:397–402
  48. Rudman, K.E., Aspden, R.M., Meakin, J.R., 2006. Compression or tension? The stress distribution in the proximal femur. BioMedical Engineering OnLine doi:10.1186/1475-925X-5-12.
  49. Savvidis E, Stabrey H. Experimentell ermittelte Werkstoffdaten von humane Oberschenkelknochen und Analyse der richtungsabhängigen Beanspruchbarkeit. Zeitschrift für Orthopädie und Unfallchirurgie. 1996;134:445–451
  50. Schileo E, Dall’Ara E, Taddei F, Malandrino A, Schotkamp T, Baleani M, et al. An accurate estimation of bone density improves the accuracy of subject-specific finite element models. Journal of Biomechanics. 2008;41:2483–2491
  51. Schileo E, Taddei F, Malandrino A, Cristofolini L, Viceconti M. Subject-specific finite element models can accurately predict strain levels in long bones. Journal of Biomechanics. 2007;40:2982–2989
  52. Skedros JG, Baucom SL. Mathematical analysis of trabecular ‘trajectories’ in apparent trajectorial structures: the unfortunate historical emphasis on the human proximal femur. Journal of Theoretical Biology. 2008;244:15–45
  53. Snyder SM, Schneider E. Estimation of mechanical properties of cortical bone by computed tomography. Journal of Orthopaedic Research. 1991;9:422–433
  54. Speirs AD, Heller MO, Duda GN, Taylor WR. Physiologically based boundary conditions in finite element modeling. Journal of Biomechanics. 2007;40:2318–2323
  55. Taddei F, Cristofolini L, Martelli S, Gill HS, Viceconti M. Subject-specific finite element models of long bones: an in vitro evaluation of the overall accuracy. Journal of Biomechanics. 2006;39:2457–2467
  56. Taylor ME, Tanner KE, Freeman MAR, Yettram AL. Stress and strain distribution within the intact femur; compression or bending. Medical Engineering and Physics. 1996;18:122–131
  57. Triepel, H., 1908. Einführung in die physikalische Anatomie. III. Teil. Die trajektoriellen Strukturen. Wiesbaden.
  58. Triepel H. Die Architekturen der menschlichen Knochenspongiosa. München und Wiesbaden: Atlas und Text; 1922;
  59. Turner CH, Anne V, Pidaparti RMV. A uniform strain criterion for trabecular bone adaptation: do continuum-level strain gradients drive adaptation?. Journal of Biomechanics. 1997;30:555–563
  60. Wada S, Kojo T, Wang Y, Ando H, Nakanishi E, Zhang M, et al. Effect of loading on the development of nerve fibers around oral implants in the dog mandible. Clinical Oral Implants Research. 2001;12:219–224
  61. Whittle MW. Clinical gait analysis: a review. Human Movement Science. 1996;15:369–387
  62. Witzel, U., 1993. Biomechanische Untersuchungen am Verbundsystem des Binde- und Stützgewebes mit der Methode der finiten Elemente, Ubersichtsreferat. In: Pesch H.-J., Stöß, H., Kummer, B. (Eds.), Osteologie Aktuell VII, Springer, pp. 91–97.
  63. Witzel U. Eine neue Methode zur virtuellen Schädelsynthese am Beispiel Camarasaurus. Hallesches Jahrbuch für Geowissenschaften. 2007;23:73–78
  64. Witzel U, Preuschoft H. Finite-element model construction for the virtual synthesis of the skulls in vertebrates: case study of diplodocus. The Anatomical Record Part A. 2005;283A:391–401
  65. Wolff J. Über die innere Architektur der Knochen und ihre Bedeutung für die Frage vom Knochenwachstum. Virchow's Archiv. 1870;50:389–450
  66. Wolff J. Das Gesetz der Transformation der Knochen. Berlin: Hirschwald; 1892;
  67. Yosibash Z, Trabelsi N, Milgrom C. Reliable simulations of the human proximal femur by high-order finite element analysis validated by experimental observations. Journal of Biomechanics. 2007;40:3688–3699

PII: S0021-9290(09)00569-7

doi: 10.1016/j.jbiomech.2009.09.049

Journal of Biomechanics
Volume 43, Issue 3 , Pages 387-396 , 10 February 2010