Moment-rotation behavior of intervertebral joints in flexion-extension, lateral bending, and axial rotation at all levels of the human spine: A structured review and meta-regression analysis.
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Bo Cheng | Wenjun Wang | Dennis E Anderson | Chaofei Zhang | Erin M Mannen | Hadley L Sis | Eileen S Cadel | Benjamin M Wong | Elizabeth A Friis | Erin M. Mannen | D. Anderson | E. Cadel | E. Friis | Chaofei Zhang | Wenjun Wang | Bo Cheng | Eileen S. Cadel
[1] V. Goel,et al. An in-vitro study of the kinematics of the normal, injured and stabilized cervical spine. , 1984, Journal of biomechanics.
[2] Oliver Nelles,et al. Interpolation and extrapolation: Comparison of definitions and survey of algorithms for convex and concave hulls , 2014, 2014 IEEE Symposium on Computational Intelligence and Data Mining (CIDM).
[3] A. Schultz,et al. Load-displacement properties of lower cervical spine motion segments. , 1988, Journal of biomechanics.
[4] Narayan Yoganandan,et al. Normative Segment-Specific Axial and Coronal Angulation Corridors of Subaxial Cervical Column in Axial Rotation , 2008, Spine.
[5] Avinash G Patwardhan,et al. Effect of compressive follower preload on the flexion–extension response of the human lumbar spine , 2003, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[6] Stephen J Ferguson,et al. Thoracolumbar spine model with articulated ribcage for the prediction of dynamic spinal loading. , 2016, Journal of biomechanics.
[7] Avinash G Patwardhan,et al. Anterior Cervical Discectomy and Fusion With a Locked Plate and Wedged Graft Effectively Stabilizes Flexion-Distraction Stage-3 Injury in the Lower Cervical Spine: A Biomechanical Study , 2009, Spine.
[8] A B Schultz,et al. Load displacement behavior of the human Lumbo‐sacral joint , 1987, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[9] M. Adams,et al. The Resistance to Flexion of the Lumbar Intervertebral Joint , 1980, Spine.
[10] Adams Ma,et al. The relevance of torsion to the mechanical derangement of the lumbar spine. , 1981 .
[11] Phillip Pollintine,et al. Strength of the Cervical Spine in Compression and Bending , 2005, Spine.
[12] A. Shirazi-Adl,et al. Trunk Hybrid Passive–Active Musculoskeletal Modeling to Determine the Detailed T12–S1 Response Under In Vivo Loads , 2018, Annals of Biomedical Engineering.
[13] Narayan Yoganandan,et al. Moment-rotation responses of the human lumbosacral spinal column. , 2007, Journal of biomechanics.
[14] B. Cunningham,et al. The effect of spinal instrumentation on kinematics at the cervicothoracic junction: emphasis on soft-tissue response in an in vitro human cadaveric model. , 2010, Journal of neurosurgery. Spine.
[15] Casey K. Lee,et al. Biomechanics of Lumbosacral Spinal Fusion in Combined Compression-Torsion Loads , 1986, Spine.
[16] T R Oxland,et al. In vitro axial preload application during spine flexibility testing: towards reduced apparatus-related artefacts. , 2000, Journal of biomechanics.
[17] Kevin W Eliceiri,et al. NIH Image to ImageJ: 25 years of image analysis , 2012, Nature Methods.
[18] Hadley L Sis,et al. Effect of follower load on motion and stiffness of the human thoracic spine with intact rib cage. , 2016, Journal of biomechanics.
[19] Scott Tashman,et al. Capturing three-dimensional in vivo lumbar intervertebral joint kinematics using dynamic stereo-X-ray imaging. , 2014, Journal of biomechanical engineering.
[20] M. Prange,et al. Flexion and extension structural properties and strengths for male cervical spine segments. , 2007, Journal of biomechanics.
[21] W. Hutton,et al. The Lumbar Spine in Backward Bending , 1988, Spine.
[22] A Shirazi-Adl,et al. Analysis of large compression loads on lumbar spine in flexion and in torsion using a novel wrapping element. , 2006, Journal of biomechanics.
[23] Lutz Claes,et al. Stepwise reduction of functional spinal structures increase range of motion and change lordosis angle. , 2007, Journal of biomechanics.
[24] F. Lavaste,et al. Three-dimensional biomechanical properties of the human cervical spine in vitro , 1993, European Spine Journal.
[25] M. Clara De Paolis Kaluza,et al. Incorporation of CT‐based measurements of trunk anatomy into subject‐specific musculoskeletal models of the spine influences vertebral loading predictions , 2017, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[26] R. Brand,et al. Mechanical properties of the human thoracic spine as shown by three-dimensional load-displacement curves. , 1976, The Journal of bone and joint surgery. American volume.
[27] Dennis E. Anderson,et al. The rib cage stiffens the thoracic spine in a cadaveric model with body weight load under dynamic moments. , 2018, Journal of the mechanical behavior of biomedical materials.
[28] L Claes,et al. Mechanically simulated muscle forces strongly stabilize intact and injured upper cervical spine specimens. , 2002, Journal of biomechanics.
[29] H. Wilke,et al. In vitro analysis of the segmental flexibility of the thoracic spine , 2017, PloS one.
[30] M M Panjabi,et al. The Basic Kinematics of the Human Spine: A Review of Past and Current Knowledge , 1978, Spine.
[31] M. Panjabi,et al. Three-Dimensional Movements of the Upper Cervical Spine , 1988, Spine.
[32] Jaw-Lin Wang,et al. Development and validation of a geometrically personalized finite element model of the lower ligamentous cervical spine for clinical applications , 2019, Comput. Biol. Medicine.
[33] Roger W Nightingale,et al. Comparative strengths and structural properties of the upper and lower cervical spine in flexion and extension. , 2002, Journal of biomechanics.
[34] Antonius Rohlmann,et al. An enhanced and validated generic thoraco-lumbar spine model for prediction of muscle forces. , 2012, Medical engineering & physics.
[35] A. Patwardhan,et al. Effect of Two-Level Total Disc Replacement on Cervical Spine Kinematics , 2009, Spine.
[36] V. Haughton,et al. The Stiffness of Lumbar Spinal Motion Segments With a High‐Intensity Zone in the Anulus Fibrosus , 1998, Spine.
[37] Hadley L Sis,et al. The rib cage reduces intervertebral disc pressures in cadaveric thoracic spines by sharing loading under applied dynamic moments. , 2017, Journal of biomechanics.
[38] Eiji Itoi,et al. Adjacent segment degeneration after fusion spinal surgery—a systematic review , 2018, International Orthopaedics.
[39] R. Brand,et al. Three-dimensional flexibility and stiffness properties of the human thoracic spine. , 1976, Journal of biomechanics.
[40] Mary L Bouxsein,et al. Development and Validation of a Musculoskeletal Model of the Fully Articulated Thoracolumbar Spine and Rib Cage. , 2015, Journal of biomechanical engineering.
[41] I. Stokes,et al. Structural behavior of human lumbar spinal motion segments. , 2004, Journal of biomechanics.
[42] A Rohlmann,et al. Comparison of eight published static finite element models of the intact lumbar spine: predictive power of models improves when combined together. , 2014, Journal of biomechanics.
[43] K. Markolf. Deformation of the thoracolumbar intervertebral joints in response to external loads: a biomechanical study using autopsy material. , 1972, The Journal of bone and joint surgery. American volume.
[44] Dichen Li,et al. Prediction of Cervical Spinal Joint Loading and Secondary Motion Using a Musculoskeletal Multibody Dynamics Model Via Force-Dependent Kinematics Approach , 2017, Spine.
[45] S Schmitt,et al. A forward dynamics simulation of human lumbar spine flexion predicting the load sharing of intervertebral discs, ligaments, and muscles , 2015, Biomechanics and modeling in mechanobiology.
[46] Manohar M. Panjabi,et al. A Method to Simulate In Vivo Cervical Spine Kinematics Using In Vitro Compressive Preload , 2002, Spine.
[47] N Arjmand,et al. A combined passive and active musculoskeletal model study to estimate L4-L5 load sharing. , 2017, Journal of biomechanics.
[48] Narayan Yoganandan,et al. Experimental flexion/extension data corridors for validation of finite element models of the young, normal cervical spine. , 2006, Journal of biomechanics.
[49] R. Arshad,et al. Influence of spinal disc translational stiffness on the lumbar spinal loads, ligament forces and trunk muscle forces during upper body inclination. , 2017, Medical engineering & physics.
[50] Narayan Yoganandan,et al. Validation of a Finite Element Model of the Young Normal Lower Cervical Spine , 2008, Annals of Biomedical Engineering.
[51] A B Schultz,et al. Mechanical properties of lumbar spine motion segments under large loads. , 1986, Journal of biomechanics.
[52] S. Yerby,et al. Posterior Stabilization at the Cervicothoracic Junction: A Biomechanical Study , 2002, Spine.
[53] D. Anderson,et al. Incorporating Six Degree-of-Freedom Intervertebral Joint Stiffness in a Lumbar Spine Musculoskeletal Model-Method and Performance in Flexed Postures. , 2015, Journal of biomechanical engineering.
[54] S. Ferguson,et al. Thoracolumbar spine loading associated with kinematics of the young and the elderly during activities of daily living. , 2017, Journal of biomechanics.
[55] A Plamondon,et al. Effects of motion segment simulation and joint positioning on spinal loads in trunk musculoskeletal models. , 2017, Journal of biomechanics.
[56] A B Schultz,et al. Effects of fluid injection on mechanical properties of intervertebral discs. , 1979, Journal of biomechanics.
[57] A B Schultz,et al. Large compressive preloads decrease lumbar motion segment flexibility , 1991, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[58] A. Patwardhan,et al. Flexion–Extension Response of the Thoracolumbar Spine Under Compressive Follower Preload , 2004, Spine.
[59] W C Hayes,et al. Variation of lumbar spine stiffness with load. , 1987, Journal of biomechanical engineering.
[60] M. Panjabi,et al. Multidirectional Testing of One- and Two-Level ProDisc-L Versus Simulated Fusions , 2007, Spine.
[61] P. Zysset,et al. Compliance of the L5-S1 spinal unit: a comparative study between an unconstrained and a partially constrained system , 2004, European Spine Journal.
[62] M M Panjabi,et al. Mechanical behavior of the human lumbar and lumbosacral spine as shown by three-dimensional load-displacement curves. , 1994, The Journal of bone and joint surgery. American volume.
[63] T Zander,et al. Effects of the Rib Cage on Thoracic Spine Flexibility / Einfluss des Brustkorbs auf die Flexibilität der Brustwirbelsäule , 2005, Biomedizinische Technik. Biomedical engineering.
[64] M. Adams,et al. A technique for quantifying the bending moment acting on the lumbar spine in vivo. , 1991, Journal of biomechanics.
[65] A. Schultz,et al. Mechanical Properties of Human Lumbar Spine Motion Segments—Part I: Responses in Flexion, Extension, Lateral Bending, and Torsion , 1979 .
[66] Kyungsoo Kim,et al. A Cervico-Thoraco-Lumbar Multibody Dynamic Model for the Estimation of Joint Loads and Muscle Forces. , 2015, Journal of biomechanical engineering.
[67] M M Panjabi,et al. Three‐Dimensional mechanical properties of the thoracolumbar junction , 1992, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[68] Christian M. Puttlitz,et al. Intervertebral Disc Replacement Maintains Cervical Spine Kinetics , 2004, Spine.
[69] J. Cholewicki,et al. Mechanical Properties of the Human Cervical Spine as Shown by Three-Dimensional Load–Displacement Curves , 2001, Spine.
[70] A. Schultz,et al. Mechanical Properties of Human Lumbar Spine Motion Segments: Influences of Age, Sex, Disc Level, and Degeneration , 1979, Spine.
[71] L Claes,et al. Influence of a Follower Load on Intradiscal Pressure and Intersegmental Rotation of the Lumbar Spine , 2001, Spine.
[72] M M Panjabi,et al. Three-Dimensional Movements of the Whole Lumbar Spine and Lumbosacral Joint , 1989, Spine.
[73] N. Crawford,et al. Biomechanical Analysis of Rigid Stabilization Techniques for Three-Column Injury in the Lower Cervical Spine , 2005, Spine.
[74] W. Tawackoli,et al. The Effect of Compressive Axial Preload on the Flexibility of the Thoracolumbar Spine , 2004, Spine.
[75] J. Dickey,et al. Effect of specimen length: are the mechanics of individual motion segments comparable in functional spinal units and multisegment specimens? , 2003, Medical engineering & physics.