Journal of Biomechanics
Volume 43, Issue 5 , Pages 871-878 , 22 March 2010

Assessment of amputee socket–stump–residual bone kinematics during strenuous activities using Dynamic Roentgen Stereogrammetric Analysis

,Accepted 7 November 2009.

References 

  1. ACA., 2009. www.amputee-coalition.org.
  2. Anderst W, Zauel R, Bishop J, Demps E, Tashman S. Validation of three-dimensional model-based tibio-femoral tracking during running. Med. Eng. Phys. 2009;31(1):10–16
  3. Bocobo CR, Castellote JM, MacKinnon D, Gabrielle-Bergman A. Videofluoroscopic evaluation of prosthetic fit and residual limbs following transtibial amputation. J. Rehabil. Res. Dev. 1998;35(1):6–13
  4. Commean PK, Smith KE, Cheverud JM, Vannier MW. Precision of surface measurements for below-knee residua. Arch. Phys. Med. Rehabil. 1996;77(5):477–486
  5. Convery P, Murray KD. Ultrasound study of the motion of the residual femur within a trans-femoral socket during gait. Prosthet. Orthot. Int. 2000;24(3):226–232
  6. Cork R. XSENSOR technology: a pressure imaging overview. Sensor Rev. 2007;27(1):24–28
  7. Erikson U, Lemperg R. Roentgenological study of movements of the amputation stump within the prosthesis socket in below-knee amputees fitted with a PTB prosthesis. Acta Orthop. Scand. 1969;40(4):520–529
  8. Frost & Sullivan, 2007. US Lower Extremity Prosthetics Markets.
  9. Grevsten S, Erikson U. A roentgenological study of the stump–socket contact and skeletal displacement in the PTB-Suciton Prosthesis. Upsala J. Med. Sci. 1975;80(1):49–57
  10. Hadcock, L., Stevenson, J., Morin, E., Bryant, T., Reed, S., Abdoli, M., Tasker, T., 2007. Pressure measurement applications for humans. Ph.D. thesis, Queen’s University, Kingston, Ontario.
  11. Kalender WA, Seissler W, Klotz E, Vock P. Spiral volumetric CT with single-breath-hold technique, continuous transport, and continuous scanner rotation. Radiology. 1990;176(1):181–183
  12. Lilja M, Johansson T, Oberg T. Movement of the tibial end in a PTB prosthesis socket: a sagittal X-ray study of the PTB prosthesis. Prosthet. Orthot. Int. 1993;17(1):21–26
  13. Long I. Normal shape-normal alignment (NSNA) above-knee prosthesis. Clin. Prosthet. Orthot. 1988;9(4):9–14
  14. Lyon CC, Kulkarni J, Zimerson E, Ross EC, Beck MH. Skin disorders in amputees. J. Am. Acad. Dermatol. 2000;42(3):501–507
  15. Mak AF, Zhang M, Boone DA. State-of-the-art research in lower-limb prosthetic biomechanics—socket interface: a review. J. Rehabil. Res. Dev. 2001;38(2):161–174
  16. Manal K, McClay Davis I, Galinat B, Stanhope S. The accuracy of estimating proximal tibial translation during natural cadence walking: bone vs. skin mounted targets. Clin. Biomech. 2003;18(2):126–131
  17. North O. Fight of their lives: disabled vets. Foxnews War Stories Documentary by Oliver North. 2008;
  18. Papaioannou G, Mitrogiannis C, Nianios G, Fiedler G. The use of Dynamic Biplane Roentgen Stereophotogrammetric Analysis (DRSA) as a new diagnostic paradigm in orthopedics. Proceedings of the Fifth International Conference on Health Care Systems, October 13–15. 2008;
  19. Papaioannou G, Mitrogiannis C, Nianios G, Fiedler G. Assessing residual bone–stump–skin–socket interface kinematics of above knee amputees with high accuracy biplane dynamic Roentgen stereogrammetric analysis. Proceedings of the Ortopaedic Research Society, February 22–25. 2009;
  20. Papaioannou G, Mitrogiannis C, Nianios G, Fiedler G. A new improved tracking technique for assessment of high resolution dynamic radiography skeletal kinematics. Proceedings of the Orthpaedic Research Society, February 22–25. 2009;
  21. Papaioannou G, Mitrogiannis C, Nianios G, Fiedler G. A new method for assessing residual limb skin-tissue strain during above-knee amputee high-speed movement. Proceedings of the Ortopaedic Research Society, February 22–25. 2009;
  22. Papaioannou G, Mitrogiannis C, Nianios G, Fiedler G. Tracking high speed arthrokinematics using a new and high resolution Biplane Dynamic Roentgen Stereogrammetric method. Int. J. Imaging. 2009;2(A09):66–85
  23. Papaioannou G, Mitrogiannis C, Fiedler G, Nianios G. Assessment of vacuum-assisted trans-tibial amputee socket dynamics. Proceedings of the Ninth International Conference on Information Technology and Applications in Biomedicine, November 5–7. 2009;
  24. Papaioannou G, Mitrogiannis C, Nianios G, Fiedler G, Wood J. Effects of assisted vacuum TT socket design on the relative motion at the stump/socket interface. Proceedings of the 56th Annual Meeting Orthopaedic Research Society, March 6–9. 2010;
  25. Papaioannou G, Nianios G, Mitrogiannis C, Fiedler G. An Improved Tracking Technique for assessment of high Resolution Dynamic Radiography kinematics Computer Modeling in Engineering & Sciences (CMES). 2008;392:931–936
  26. Papaioannou G, Nianios G, Mitrogiannis C, Fyhrie D, Tashman S, Yang KH. Patient-specific knee joint finite element model validation with high-accuracy kinematics from biplane dynamic Roentgen stereogrammetric analysis. J. Biomech. 2008;41(12):2633–2638
  27. Papaioannou G, Protopappas CV, Tsopelas P, Mitrogiannis C, Nianios G, Tashman S. A new method for pressure sensor equilibration and conditioning. Braz. J. Biomotricity. 2008;2(3):176–195
  28. Parker JR. Algorithms for image processing and computer vision. Paper/Cdr first ed. New York, NY, USA: John Wiley & Sons; 1996;November 25
  29. Polliack AA, Sieh RC, Craig DD, Landsberger S, McNeil DR, Ayyappa E. Scientific validation of two commercial pressure sensor systems for prosthetic socket fit. Prosthet. Orthot. Int. 2000;24(1):63–73
  30. Pramanik C, Saha H, Gangopadhyay U. Design optimization of a high performance silicon MEMS piezoresistive pressure sensor for biomedical applications. J. Micromech. Microeng. 2006;16:2060–2066
  31. Prosthetics and Orthotics, 2006. Research in P&O: are we addressing clinically-relevant problems. Report on the State-of-The-Science Meeting in Prosthetics and Orthotics, Northwestern University Feinberg School of Medicine, Chicago, USA.
  32. Reynolds DP, Lord M. Interface load analysis for computer-aided design of below-knee prosthetic sockets. Med. Biol. Eng. Comput. 1992;30(4):419–426
  33. Silver-Thorn MB, Childress DC. Parametric analysis using the finite element method to investigate prosthetic interface stresses for persons with trans-tibia amputation. J. Rehabil. Res. Dev. 1996;33(3):227–238
  34. Smith KE, Commean PK, Vannier MW. In vivo 3D measurement of soft tissue change due to lower limb prostheses using spiral computed tomography. Radiology. 1996;200(3):843–850
  35. Smith KE, Vannier MW, Commean PK. Spiral CT volumetry of below knee residua. IEEE Trans. Rehabil. Eng. 1995;3(3):235–241
  36. Soderberg B, Ryd L, Person BM. Roentgen Stereophotogrammetric Analysis of Motion between the bone and the socket in the transtibial amputation prosthesis: a case study. J. Prosthet. Orthot. 2003;15(3):95–99
  37. Tashman S. Comments on “validation of a non-invasive fluoroscopic imaging technique for the measurement of dynamic knee joint motion”. J. Biomech. 2008;41(15):3290–3291
  38. Torres-Moreno R, Jones D, Solomonidis SE, Mackie H. Magnetic resonance imaging of residual soft tissues for computer-aided technology applications in prosthetics—a case study. J. Prosthet. Orthot. 1999;11(1):6–11
  39. Vannah WM, Drvaric DM, Hastings JA, Stand JA, Harning DM. A method of residual limb stiffness distribution measurement. J. Rehabil. Res. Dev. 1999;36(1):1–7
  40. Vannier MW, Commean PK, Brunsden BS, Smith KE. Visualization of prosthesis fit in lower-limb amputees. IEEE Comput. Graphics Appl. 1997;17(5):16–29
  41. Vannier MW, Commean PK, Smith KE. 3D Lower-extremity residua measurement systems error analysis. J. Prosthet. Orthot. 1997;9(2):67–76
  42. You B-M, Siy P, Anderst W, Tashman S. In-vivo measurement of 3D skeletal kinematics from sequences of biplane radiographs: application to knee kinematics. IEEE Trans. Med. Imaging. 2001;20(6):514–525
  43. Zachariah SG, Sanders JE. Finite element estimates of interface stress in the transtibial prosthesis using gap elements are different from those using automated contact. J. Biomech. 2000;33:895–899
  44. Zhang M, Lord M, Turner-Smith AR, Roberts VC. Development of a nonlinear finite element modelling of the below-knee prosthetic socket interface. Med. Eng. Phys. 1995;17(8):559–566
  45. Zhang M, Mak AF. A finite element analysis of the load transfer between an above-knee residual limb and its prosthetic socket—roles of interfacial friction and distal-end boundary conditions. IEEE Trans. Rehabil. Eng. 1996;4(4):337–346
  46. Zhang M, Mak AFT. In vivo friction properties of human skin. Prosthet. Orthot. Int. 1999;23(2):135–141

PII: S0021-9290(09)00649-6

doi: 10.1016/j.jbiomech.2009.11.013

Journal of Biomechanics
Volume 43, Issue 5 , Pages 871-878 , 22 March 2010