Effect of the type of electrical stimulation on spinal fusion in a rat posterolateral spinal fusion model.
暂无分享,去创建一个
[1] J. Ouellet,et al. Factors Associated With Clinical Outcomes After Lumbar Interbody Fusion With a Porous Nitinol Implant , 2017, Global spine journal.
[2] T. Witham,et al. Variables Affecting Fusion Rates in the Rat Posterolateral Spinal Fusion Model with Autogenic/Allogenic Bone Grafts: A Meta-analysis , 2016, Annals of Biomedical Engineering.
[3] Jeffrey C. Wang,et al. Clinical and radiographic outcomes of concentrated bone marrow aspirate with allograft and demineralized bone matrix for posterolateral and interbody lumbar fusion in elderly patients , 2015, European Spine Journal.
[4] A. Ghazanfari,et al. Bone union rate with recombinant human bone morphogenic protein-2 versus autologous iliac bone in PEEK cages for anterior lumbar interbody fusion , 2014, International Orthopaedics.
[5] Young Ha Kim,et al. Enhanced spinal fusion using a biodegradable porous mesh container in a rat posterolateral spinal fusion model. , 2014, The spine journal : official journal of the North American Spine Society.
[6] Y. Matsuyama,et al. Bone union rate with autologous iliac bone versus local bone graft in posterior lumbar interbody fusion (PLIF): a multicenter study , 2013, European Spine Journal.
[7] Safdar N. Khan,et al. Cost Effectiveness Analysis of Graft Options in Spinal Fusion Surgery Using a Markov Model , 2012, Journal of spinal disorders & techniques.
[8] Clifford B. Jones,et al. Adjuncts in posterior lumbar spine fusion: comparison of complications and efficacy , 2012, Archives of Orthopaedic and Trauma Surgery.
[9] U. Erkorkmaz,et al. Simvastatin improves spinal fusion in rats. , 2011, Acta orthopaedica et traumatologica turcica.
[10] Jeffrey C. Wang,et al. Bone Morphogenetic Protein-2 and Bone Marrow Aspirate With Allograft as Alternatives to Autograft in Instrumented Revision Posterolateral Lumbar Spinal Fusion: A Minimum Two-Year Follow-up Study , 2010, Spine.
[11] Warren D. Yu,et al. Pseudarthrosis of the Spine , 2009, The Journal of the American Academy of Orthopaedic Surgeons.
[12] Shih-Jung Liu,et al. Enhancement of posterolateral lumbar spine fusion using low‐dose rhBMP‐2 and cultured marrow stromal cells , 2009, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[13] K. Takagishi,et al. Evaluation of Posterolateral Spinal Fusion Using Mesenchymal Stem Cells: Differences With or Without Osteogenic Differentiation , 2007, Spine.
[14] Paul A. Glazer,et al. Electrical stimulation therapies for spinal fusions: current concepts , 2006, European Spine Journal.
[15] S. Ondra,et al. Salvage Technique of Posterior Iliac Bolt Placement in Long-Segment Spinal Constructs with a Previous Posterior Iliac Crest Harvest: Technical Note , 2006, Neurosurgery.
[16] K. Kichikawa,et al. Malignant duodenal obstructions: palliative treatment using self-expandable nitinol stents. , 2006, Journal of vascular and interventional radiology : JVIR.
[17] Jonathan N Grauer,et al. Animal models for spinal fusion. , 2005, The spine journal : official journal of the North American Spine Society.
[18] Ming Yan,et al. Tilted plane Feldkamp type reconstruction algorithm for spiral cone-beam CT , 2004, ICARCV 2004 8th Control, Automation, Robotics and Vision Conference, 2004..
[19] M. Hu,et al. Rapid Lengthening of Rabbit Mandibular Ramus by Using Nitinol Spring: A Preliminary Study , 2004, The Journal of craniofacial surgery.
[20] J. Lane,et al. Resorbable posterolateral graft containment in a rabbit spinal fusion model. , 2002, Orthopedics.
[21] S. Boden,et al. Overview of the Biology of Lumbar Spine Fusion and Principles for Selecting a Bone Graft Substitute , 2002, Spine.
[22] F. P. Magee,et al. Combined magnetic fields accelerate and increase spine fusion: a double-blind, randomized, placebo controlled study. , 2002, Spine.
[23] Ho-Young Song,et al. Malignant gastric outlet obstructions: treatment by means of coaxial placement of uncovered and covered expandable nitinol stents. , 2002, Journal of vascular and interventional radiology : JVIR.
[24] N. Kahanovitz,et al. The effect of varied electrical current densities on lumbar spinal fusions in dogs. , 2001, The spine journal : official journal of the North American Spine Society.
[25] A. Odurny. Colonic Anastomotic Stenoses and Memotherm Stent Fracture: A Report of Three Cases , 2001, CardioVascular and Interventional Radiology.
[26] J. Thalgott,et al. Instrumented posterolateral lumbar fusion using coralline hydroxyapatite with or without demineralized bone matrix, as an adjunct to autologous bone. , 2001, The spine journal : official journal of the North American Spine Society.
[27] S. Boden. Biology of lumbar spine fusion and use of bone graft substitutes: present, future, and next generation. , 2000, Tissue engineering.
[28] W. Hayes,et al. In vivo evaluation of coralline hydroxyapatite and direct current electrical stimulation in lumbar spinal fusion. , 1999, Spine.
[29] John R. Johnson,et al. A double-blind study of capacitively coupled electrical stimulation as an adjunct to lumbar spinal fusions. , 1999, Spine.
[30] D. Kucharzyk. A controlled prospective outcome study of implantable electrical stimulation with spinal instrumentation in a high-risk spinal fusion population. , 1999, Spine.
[31] W. Hutton,et al. The use of coralline hydroxyapatite with bone marrow, autogenous bone graft, or osteoinductive bone protein extract for posterolateral lumbar spine fusion. , 1999, Spine.
[32] S. Gertzbein,et al. Analysis of circumferential lumbar fusion outcome in the treatment of degenerative disc disease of the lumbar spine. , 1998, Journal of spinal disorders.
[33] A. Rogozinski,et al. Efficacy of Implanted Bone Growth Stimulation in Instrumented Lumbosacral Spinal Fusion , 1996, Spine.
[34] R. Puno,et al. The Use of Implantable Direct Current Stimulation in Multilevel Spinal Fusion Without Instrumentation: A Prospective Clinical and Radiographic Evaluation With Long‐Term Follow‐Up , 1996, Spine.
[35] Sidhu,et al. Lumbar Spine Fusion in the Treatment of Degenerative Conditions: Current Indications and Recommendations. , 1995, The Journal of the American Academy of Orthopaedic Surgeons.
[36] Allen J. Meril. Direct Current Stimulation of Allograft in Anterior and Posterior Lumbar Interbody Fusions , 1994, Spine.
[37] S. Emery,et al. The fate of anterior vertebral bone grafts in patients irradiated for neoplasm. , 1994, Clinical orthopaedics and related research.
[38] T. Zdeblick. A prospective, randomized study of lumbar fusion. Preliminary results. , 1993, Spine.
[39] D. E. Swartz,et al. Posterolateral lumbar and lumbosacral fusion with and without pedicle screw internal fixation. , 1992, Clinical orthopaedics and related research.
[40] V. Mooney,et al. A Randomized Double-Blind Prospective Study of the Efficacy of Pulsed Electromagnetic Fields for Interbody Lumbar Fusions , 1990, Spine.
[41] S. Arnoczky,et al. The Efficacy of Direct Current Electrical Stimulation to Enhance Canine Spinal Fusions , 1990, Clinical orthopaedics and related research.
[42] F. Kaplan,et al. Treatment of castration-induced osteoporosis by a capacitively coupled electrical signal in rat vertebrae. , 1989, The Journal of bone and joint surgery. American volume.
[43] W. Kane,et al. Direct Current Electrical Bone Growth Stimulation for Spinal Fusion , 1988, Spine.
[44] J. Bubis,et al. Stimulation of Bone Formation by Electrical Current on Spinal Fusion , 1986, Spine.
[45] C. Charnsangavej,et al. Percutaneous endovascular stents: an experimental evaluation. , 1985, Radiology.
[46] Dwyer Af,et al. Direct current stimulation in spinal fusion. , 1974 .
[47] G. G. Wickham,et al. DIRECT CURRENT STIMULATION IN SPINAL FUSION , 1974, The Medical journal of Australia.
[48] P. Eysel,et al. Clinical efficacy of pedicle instrumentation and posterolateral fusion in the symptomatic degenerative lumbar spine , 2004, European Spine Journal.
[49] J F Connolly,et al. A multicenter study of the treatment of non-union with constant direct current. , 1981, The Journal of bone and joint surgery. American volume.