CT-based structural analyses of vertebral fractures with polymeric augmentation: A study of cadaveric three-level spine segments
暂无分享,去创建一个
Asghar Rezaei | Michael J. Yaszemski | Yong Li | Hugo Giambini | Lichun Lu | Alan L. Miller | Hao Xu | Haocheng Xu | Lichun Lu | M. Yaszemski | A. Rezaei | Haocheng Xu | H. Giambini | A. Miller | Yong Li | Hao Xu
[1] B. Snyder,et al. Finite element analysis and CT-based structural rigidity analysis to assess failure load in bones with simulated lytic defects. , 2014, Bone.
[2] W C Hayes,et al. Differences between the tensile and compressive strengths of bovine tibial trabecular bone depend on modulus. , 1994, Journal of biomechanics.
[3] Justin W. Fernandez,et al. Specimen-specific fracture risk curves of lumbar vertebrae under dynamic axial compression. , 2021, Journal of the mechanical behavior of biomedical materials.
[4] J. Bulte,et al. Multimodal imaging of sustained drug release from 3-D poly(propylene fumarate) (PPF) scaffolds. , 2011, Journal of controlled release : official journal of the Controlled Release Society.
[5] B. Snyder,et al. CT-based Structural Rigidity Analysis Is More Accurate Than Mirels Scoring for Fracture Prediction in Metastatic Femoral Lesions , 2016, Clinical Orthopaedics and Related Research.
[6] J. Camp,et al. The trabecular effect: A population‐based longitudinal study on age and sex differences in bone mineral density and vertebral load bearing capacity , 2018, Clinical biomechanics.
[7] W. Hayes,et al. Predicting pathologic fracture risk in the management of metastatic bone defects. , 1995, Clinical orthopaedics and related research.
[8] Lichun Lu,et al. A New Vertebral Body Replacement Strategy Using Expandable Polymeric Cages. , 2016, Tissue engineering. Part A.
[9] J. Heimans,et al. Do metastases in vertebrae begin in the body or the pedicles? Imaging study in 45 patients. , 1992, AJR. American journal of roentgenology.
[10] Howard S. Smith,et al. Painful osseous metastases. , 2011, Pain physician.
[11] C. Whyne,et al. Effects of tumor location, shape and surface serration on burst fracture risk in the metastatic spine. , 2004, Journal of biomechanics.
[12] P. Gerszten,et al. Minimally Invasive Treatments for Metastatic Spine Tumors: Vertebroplasty, Kyphoplasty, and Radiosurgery , 2008 .
[13] David Dean,et al. Synthesis and properties of photocross-linked poly(propylene fumarate) scaffolds , 2001, Journal of biomaterials science. Polymer edition.
[14] Matthew J. Silva,et al. Predicting Failure of Thoracic Vertebrae With Simulated and Actual Metastatic Defects , 1997, Clinical orthopaedics and related research.
[15] C. Whyne,et al. Biphasic Material Properties of Lytic Bone Metastases , 2000, Annals of Biomedical Engineering.
[16] M J Yaszemski,et al. Specimen-Specific Nonlinear Finite Element Modeling to Predict Vertebrae Fracture Loads After Vertebroplasty , 2014, Spine.
[17] J. Camp,et al. Noninvasive Failure Load Prediction of Vertebrae with Simulated Lytic Defects and Biomaterial Augmentation. , 2016, Tissue engineering. Part C, Methods.
[18] W. Walsh,et al. Effects of cement augmentation on the mechanical stability of multilevel spine after vertebral compression fracture. , 2016, Journal of spine surgery.
[19] A. Mikos,et al. Development of an injectable, in situ crosslinkable, degradable polymeric carrier for osteogenic cell populations. Part 3. Proliferation and differentiation of encapsulated marrow stromal osteoblasts cultured on crosslinking poly(propylene fumarate). , 2002, Biomaterials.
[20] Lichun Lu,et al. Poly(Propylene Fumarate)-Hydroxyapatite Nanocomposite Can Be a Suitable Candidate for Cervical Cages. , 2018, Journal of biomechanical engineering.
[21] K. An,et al. Biomechanical evaluation of an injectable and biodegradable copolymer P(PF-co-CL) in a cadaveric vertebral body defect model. , 2014, Tissue engineering. Part A.
[22] K. Kaneda,et al. Risk factors and probability of vertebral body collapse in metastases of the thoracic and lumbar spine. , 1997, Spine.
[23] Joseph C Wenke,et al. Effect of calcium phosphate coating and rhBMP-2 on bone regeneration in rabbit calvaria using poly(propylene fumarate) scaffolds. , 2015, Acta biomaterialia.
[24] H. Deramond,et al. [Preliminary note on the treatment of vertebral angioma by percutaneous acrylic vertebroplasty]. , 1987, Neuro-Chirurgie.
[25] Robert E. Sommerich,et al. The Effect of Cement Augmentation on the Geometry and Structural Response of Recovered Osteopenic Vertebrae: An Anterior-Wedge Fracture Model , 2008, Spine.
[26] B. Snyder,et al. Noninvasive Imaging Predicts Failure Load of the Spine with Simulated Osteolytic Defects*† , 2000, The Journal of bone and joint surgery. American volume.
[27] D. Dean,et al. Effect of Chemical and Physical Properties on the In Vitro Degradation of 3D Printed High Resolution Poly(propylene fumarate) Scaffolds. , 2017, Biomacromolecules.
[28] Stephen J Ferguson,et al. The Effectiveness of Percutaneous Vertebroplasty Is Determined by the Patient-Specific Bone Condition and the Treatment Strategy , 2016, PloS one.
[29] Lichun Lu,et al. Mechanical testing setups affect spine segment fracture outcomes. , 2019, Journal of the mechanical behavior of biomedical materials.
[30] Qingshan Chen,et al. Cross-linking Characteristics and Mechanical Properties of an Injectable Biomaterial Composed of Polypropylene Fumarate and Polycaprolactone Co-polymer , 2011, Journal of biomaterials science. Polymer edition.
[31] D. Dragomir-Daescu,et al. Femoral Strength Changes Faster With Age Than BMD in Both Women and Men: A Biomechanical Study , 2015, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[32] K. An,et al. A 3D finite element model of prophylactic vertebroplasty in the metastatic spine: Vertebral stability and stress distribution on adjacent vertebrae , 2020, The journal of spinal cord medicine.