TY - JOUR
T1 - Multi-patient finite element simulation of keeled versus pegged glenoid implant designs in shoulder arthroplasty
AU - Pomwenger, W.
AU - Entacher, K.
AU - Resch, H.
AU - Schuller-Götzburg, P.
N1 - Cited By :19
Export Date: 14 December 2023
CODEN: MBECD
Correspondence Address: Pomwenger, W.; Department of Information Technology and Systems Management, Austria; email: [email protected]
Tradenames: Siemens Volume Zoom, Siemens, Germany; Universe, Arthrex, United States
Manufacturers: Siemens, Germany; Arthrex, United States
References: Aldinger, P.R., Raiss, P., Rickert, M., Loew, M., Complications in shoulder arthroplasty: an analysis of 485 cases (2010) Int Orthop, 34 (4), pp. 517-524. , PID: 19396634; Anglin, C., Wyss, U.P., Nyffeler, R.W., Gerber, C., Loosening performance of cemented glenoid prosthesis design pairs (2001) Clin Biomech, 16 (2), pp. 144-150. , COI: 1:STN:280:DC%2BD3Mzit1yntg%3D%3D; Anglin, C., Wyss, U.P., Pichora, D.R., Shoulder prosthesis subluxation: theory and experiment (2009) J Shoulder Elbow Surg, 9 (2), pp. 104-114; ASTM F451, (2008) Standard specification for acrylic bone cement, , ASTM International, West Conshohocken; Bartelt, R., Sperling, J.W., Schleck, C.D., Cofield, R.H., Shoulder arthroplasty in patients aged fifty-five years or younger with osteoarthritis (2011) J Shoulder Elbow Surg, 20 (1), pp. 123-130. , PID: 20797877; Bergmann, G., Graichen, F., Bender, A., Kääb, M., Rohlmann, A., Westerhoff, P., In vivo glenohumeral contact forces–measurements in the first patient 7 months postoperatively (2007) J Biomech, 40 (10), pp. 2139-2149. , COI: 1:STN:280:DC%2BD2szotlKmtw%3D%3D, PID: 17169364; Bishop, J.L., Kline, S.K., Aalderink, K.J., Zauel, R., Bey, M.J., Glenoid inclination: in vivo measures in rotator cuff tear patients and associations with superior glenohumeral joint translation (2009) J Shoulder Elbow Surg, 18 (2), pp. 231-236. , PID: 19062313; Bohsali, K.I., Wirth, M.A., Rockwood, C.A., Complications of total shoulder arthroplasty (2006) J Bone Joint Surg Am, 88 (10), pp. 2279-2292. , PID: 17015609; Carter, D.R., Hayes, W.C., The compressive behavior of bone as a two-phase porous structure (1977) J Bone Joint Surg Am, 59 (7), pp. 954-962. , COI: 1:STN:280:DyaE1c%2FgsFKjsw%3D%3D, PID: 561786; Chin, P.Y.K., Sperling, J.W., Cofield, R.H., Schleck, C., Complications of total shoulder arthroplasty: are they fewer or different? (2006) J Shoulder Elbow Surg, 15 (1), pp. 19-22. , PID: 16414464; Couteau, B., Mansat, P., Mansat, M., Darmana, R., Egan, J., In vivo characterization of glenoid with use of computed tomography (2001) J Shoulder Elbow Surg, 10 (2), pp. 116-122. , COI: 1:STN:280:DC%2BD3MzpsFCjtg%3D%3D, PID: 11307073; Edwards, T.B., Labriola, J.E., Stanley, R.J., O’Connor, D.P., Elkousy, H.A., Gartsman, G.M., Radiographic comparison of pegged and keeled glenoid components using modern cementing techniques: a prospective randomized study (2010) J Shoulder Elbow Surg, 19 (2), pp. 251-257. , PID: 20185072; Favre, P., Sheikh, R., Fucentese, S.F., Jacob, H.A.C., An algorithm for estimation of shoulder muscle forces for clinical use. Clin Biomech (Bristol (2005) Avon), 20 (8), pp. 822-833; Fox, T.J., Cil, A., Sperling, J.W., Sanchez-Sotelo, J., Schleck, C.D., Cofield, R.H., Survival of the glenoid component in shoulder arthroplasty (2009) J Shoulder Elbow Surg, 18 (6), pp. 859-863. , PID: 19297199; Franklin, J.L., Barrett, W.P., Jackins, S.E., Matsen, F.A., Glenoid loosening in total shoulder arthroplasty. Association with rotator cuff deficiency (1988) J Arthroplasty, 3 (1), pp. 39-46. , COI: 1:STN:280:DyaL1c7pvFKjtQ%3D%3D, PID: 3361319; Frich, L.H., Jensen, N.C., Odgaard, A., Pedersen, C.M., Søjbjerg, J.O., Dalstra, M., Bone strength and material properties of the glenoid (1997) J Shoulder Elbow Surg, 6 (2), pp. 97-104. , COI: 1:STN:280:DyaK2s3ovFyisw%3D%3D, PID: 9144596; Frost, H.M., Bone’s mechanostat: a 2003 update (2003) Anat Rec A Discov Mol Cell Evol Biol, 275 (2), pp. 1081-1101. , PID: 14613308; Gartsman, G.M., Elkousy, H.A., Warnock, K.M., Edwards, T.B., O’Connor, D.P., Radiographic comparison of pegged and keeled glenoid components (2005) J Shoulder Elbow Surg, 14 (3), pp. 252-257. , PID: 15889022; Gupta, S., Prosenjit, D., Bone geometry and mechanical properties of the human scapula using computed tomography data (2004) Trends Biomater Artif Organs, 17 (2), pp. 61-70; Hopkins, A.R., Hansen, U.N., Amis, A.A., Taylor, M., Emery, R.J., Glenohumeral kinematics following total shoulder arthroplasty: a finite element investigation (2007) J Orthop Res, 25 (1), pp. 108-115. , PID: 17048256; Kalouche, I., Crépin, J., Abdelmoumen, S., Mitton, D., Guillot, G., Gagey, O., Mechanical properties of glenoid cancellous bone. Clin Biomech (Bristol (2010) Avon), 25 (4), pp. 292-298; Kasten, P., Pape, G., Raiss, P., Bruckner, T., Rickert, M., Zeifang, F., Loew, M., Mid-term survivorship analysis of a shoulder replacement with a keeled glenoid and a modern cementing technique (2010) J Bone Joint Surg Br, 92 (3), pp. 387-392. , COI: 1:STN:280:DC%2BC3c7ksVaqsA%3D%3D, PID: 20190310; Kurtz, S.M., Villarraga, M.L., Zhao, K., Edidin, A.A., Static and fatigue mechanical behavior of bone cement with elevated barium sulfate content for treatment of vertebral compression fractures (2005) Biomaterials, 26 (17), pp. 3699-3712. , COI: 1:CAS:528:DC%2BD2cXhtFejsrjK, PID: 15621260; Lacroix, D., Prendergast, P.J., Stress analysis of glenoid component designs for shoulder arthroplasty (1997) Proc Inst Mech Eng H, 211 (6), pp. 467-474. , COI: 1:STN:280:DyaK1c7ntVKgtw%3D%3D, PID: 9509884; Lacroix, D., Murphy, L.A., Prendergast, P.J., Three-dimensional finite element analysis of glenoid replacement prostheses: a comparison of keeled and pegged anchorage systems (2000) J Biomech Eng, 122 (4), pp. 430-436. , COI: 1:STN:280:DC%2BD3cvoslansA%3D%3D, PID: 11036568; Lazarus, M.D., Jensen, K.L., Southworth, C., Matsen, F.A., The radiographic evaluation of keeled and pegged glenoid component (2002) J Bone Joint Surg Am, 84A (7), pp. 1174-1182; Mansat, P., Briot, J., Mansat, M., Swider, P., Evaluation of the glenoid implant survival using a biomechanical finite element analysis: influence of the implant design, bone properties, and loading location (2007) J Shoulder Elbow Surg, 16, pp. 79-83; Mimar, R., Limb, D., Hall, R.M., Evaluation of the mechanical and architectural properties of glenoid bone (2008) J Shoulder Elbow Surg, 17 (2), pp. 336-341. , PID: 18249567; Neer, C.S., Articular replacement for the humeral head (1955) J Bone Joint Surg Am 37-A(2), pp. 215-228; Nikooyan, A.A., Veeger, H.E.J., Westerhoff, P., Graichen, F., Bergmann, G., van der Helm, F.C.T., Validation of the delft shoulder and elbow model using in vivo glenohumeral joint contact forces (2010) J Biomech, 43 (15), pp. 3007-3014. , COI: 1:STN:280:DC%2BC3cbltFCktA%3D%3D, PID: 20655049; Nuttall, D., Haines, J.F., Trail, I.I., A study of the micromovement of pegged and keeled glenoid components compared using radiostereometric analysis (2007) J Shoulder Elbow Surg, 16, pp. 65-70; Rahme, H., Mattsson, P., Wikblad, L., Nowak, J., Larsson, S., Stability of cemented in-line pegged glenoid compared with keeled glenoid components in total shoulder arthroplasty (2009) J Bone Joint Surg Am, 91A (8), pp. 1965-1972; Ramaniraka, N.A., Rakotomanana, L.R., Leyvraz, P.F., The fixation of the cemented femoral component. Effects of stem stiffness, cement thickness and roughness of the cement-bone surface (2000) J Bone Joint Surg Br, 82 (2), pp. 297-303. , COI: 1:STN:280:DC%2BD3c3hs1ahsg%3D%3D, PID: 10755444; Stadelmann, V.A., Terrier, A., Pioletti, D.P., Microstimulation at the bone-implant interface upregulates osteoclast activation pathways (2008) Bone, 42 (2), pp. 358-364. , PID: 18006399; Terrier, A., Büchler, P., Farron, A., Bone-cement interface of the glenoid component: stress analysis for varying cement thickness. Clin Biomech (Bristol (2005) Avon), 20 (7), pp. 710-717; Terrier, A., Büchler, P., Farron, A., Influence of glenohumeral conformity on glenoid stresses after total shoulder arthroplasty (2006) J Shoulder Elbow Surg, 15 (4), pp. 515-520. , PID: 16831660; Terrier, A., Aeberhard, M., Michellod, Y., Mullhaupt, P., Gillet, D., Farron, A., Piokletti, D.P., A musculoskeletal shoulder model based on pseudo-inverse and null-space optimization (2010) Med Eng Phys, 32 (9), pp. 1050-1056. , PID: 20709589; Throckmorton, T.W., Zarkadas, P.C., Sperling, J.W., Cofield, R.H., Pegged versus keeled glenoid components in total shoulder arthroplasty (2010) J Shoulder Elbow Surg, 19 (5), pp. 726-733. , PID: 20149974; van der Helm, F.C., Analysis of the kinematic and dynamic behavior of the shoulder mechanism (1994) J Biomech, 27 (5), pp. 527-550. , PID: 8027089; Viceconti, M., Olsen, S., Nolte, L.P., Burton, K., Extracting clinically relevant data from finite element simulations. Clin Biomech (Bristol (2005) Avon), 20 (5), pp. 451-454; Walch, G., Young, A.A., Melis, B., Gazielly, D., Loew, M., Boileau, P., Results of a convex-back cemented keeled glenoid component in primary osteoarthritis: multicenter study with a follow-up greater than 5 years (2011) J Shoulder Elbow Surg, 20 (3), pp. 385-394. , PID: 21055972
PY - 2015
Y1 - 2015
N2 - This study investigates the mechanical behaviour of keeled and pegged implant designs used in shoulder arthroplasty for the first time using multiple 3D models. Thus, this study should provide valuable insights into the preferable use of either of these two controversial implant designs. Three-dimensional models of a scapula were derived from the CT scans of five patients, and an inter-patient-specific finite element analysis with special attention to bone density and boundary conditions was carried out. A distinct decrease in the investigated parameters was evident with the pegged implant in all of the patients, specifically for the implant and the bone cement. The relevance of the stress reduction within the bone is minor, whereas the reduction in the stress of the bone cement contributes to an increase in the bone cement survival. The particular construction of the pegged implant provides better stability and therefore supports bone ingrowth. The large variations between the patients show the necessity of patient-specific simulations and the use of multiple models to derive valuable results. In the conducted inter-patient-specific FEA, the pegged glenoid implants were found to exhibit superior behaviour compared with keeled implants. The results confirm the general clinical findings and demonstrate the FEA as a valuable tool in prosthetic and orthopaedic problems. © 2015, International Federation for Medical and Biological Engineering.
AB - This study investigates the mechanical behaviour of keeled and pegged implant designs used in shoulder arthroplasty for the first time using multiple 3D models. Thus, this study should provide valuable insights into the preferable use of either of these two controversial implant designs. Three-dimensional models of a scapula were derived from the CT scans of five patients, and an inter-patient-specific finite element analysis with special attention to bone density and boundary conditions was carried out. A distinct decrease in the investigated parameters was evident with the pegged implant in all of the patients, specifically for the implant and the bone cement. The relevance of the stress reduction within the bone is minor, whereas the reduction in the stress of the bone cement contributes to an increase in the bone cement survival. The particular construction of the pegged implant provides better stability and therefore supports bone ingrowth. The large variations between the patients show the necessity of patient-specific simulations and the use of multiple models to derive valuable results. In the conducted inter-patient-specific FEA, the pegged glenoid implants were found to exhibit superior behaviour compared with keeled implants. The results confirm the general clinical findings and demonstrate the FEA as a valuable tool in prosthetic and orthopaedic problems. © 2015, International Federation for Medical and Biological Engineering.
KW - 3D modelling
KW - Boundary conditions
KW - Finite element analysis
KW - Glenoid implant
KW - Micromotions
KW - Arthroplasty
KW - Bone
KW - Bone cement
KW - Computerized tomography
KW - Design
KW - Diagnostic products
KW - Orthopedics
KW - Finite element simulations
KW - Mechanical behaviour
KW - Micro motion
KW - Patient specific
KW - Shoulder arthroplasty
KW - Stress reduction
KW - Three-dimensional model
KW - Finite element method
KW - bone cement
KW - Article
KW - biomechanics
KW - bone density
KW - bone growth
KW - comparative study
KW - computer assisted tomography
KW - female
KW - finite element analysis
KW - glenoid cavity
KW - human
KW - implant
KW - keeled glenoid implant
KW - male
KW - pegged glenoid implant
KW - physical model
KW - priority journal
KW - scapula
KW - shoulder arthroplasty
KW - calibration
KW - computer simulation
KW - joint prosthesis
KW - mechanical stress
KW - physiology
KW - prosthesis design
KW - regression analysis
KW - replacement arthroplasty
KW - shoulder
KW - surgery
KW - weight bearing
KW - Arthroplasty, Replacement
KW - Bone Density
KW - Calibration
KW - Computer Simulation
KW - Female
KW - Finite Element Analysis
KW - Humans
KW - Joint Prosthesis
KW - Male
KW - Prosthesis Design
KW - Regression Analysis
KW - Scapula
KW - Shoulder Joint
KW - Stress, Mechanical
KW - Weight-Bearing
U2 - 10.1007/s11517-015-1286-7
DO - 10.1007/s11517-015-1286-7
M3 - Article
SN - 0140-0118
VL - 53
SP - 781
EP - 790
JO - Medical and Biological Engineering and Computing
JF - Medical and Biological Engineering and Computing
IS - 9
ER -