Icariin-loaded 3D-printed porous Ti6Al4V reconstruction rods for the treatment of necrotic femoral heads.
暂无分享,去创建一个
Haoyuan Lei | Changchun Zhou | Yujiang Fan | Ming Liu | Pin Feng | Z. Tan | Zixuan Su | Xingdong Zhang | Lei Liu | Zhigang Zhou | Canyu Gao
[1] Jing Wang,et al. Osteoporosis remission via an anti-inflammaging effect by icariin activated autophagy. , 2023, Biomaterials.
[2] S. Dong,et al. Application of Biomaterials in Treating Early Osteonecrosis of the Femoral Head: Research Progress and Future Perspectives. , 2023, Acta biomaterialia.
[3] Xing‐dong Zhang,et al. Functionalized 3D-printed porous titanium scaffold induces in situ vascularized bone regeneration by orchestrating bone microenvironment , 2023, Journal of Materials Science & Technology.
[4] Cen Chen,et al. 3D printed porous titanium filled with mineralized UV-responsive chitosan hydrogel promotes cell proliferation and osteogenesis in vitro , 2022, Journal of Materials Science & Technology.
[5] K. Duan,et al. Repair of rabbit femoral head necrosis by release of alendronate and growth differentiation factor-5 from injectable alginate/calcium phosphate carriers , 2022, Materials Today Communications.
[6] M. Chang,et al. Convolutional Neural Network Algorithm Trained with Anteroposterior Radiographs to Diagnose Pre-Collapse Osteonecrosis of the Femoral Head , 2022, Applied Sciences.
[7] Xin Liu,et al. Magnesium dopped Calcium-Fluoride/Icaritin composite multi-layer coating functionalized 3D printed β-TCP scaffold induces sustained bone regeneration in a rabbit model , 2022, Materials & Design.
[8] Xuan Pei,et al. Ti6Al4V orthopedic implant with biomimetic heterogeneous structure via 3D printing for improving osteogenesis , 2022, Materials & Design.
[9] Shouyang Zhang,et al. The powder-based 3D printed alloys on titanium-based biomaterial applications: A review , 2022, Journal of Materials Science & Technology.
[10] Kunzheng Wang,et al. An injectable self-adaptive polymer as a drug carrier for the treatment of nontraumatic early-stage osteonecrosis of the femoral head , 2022, Bone Research.
[11] Xiang Li,et al. A novel hierarchical biofunctionalized 3D-printed porous Ti6Al4V scaffold with enhanced osteoporotic osseointegration through osteoimmunomodulation , 2022, Journal of Nanobiotechnology.
[12] Lingjia Yu,et al. A novel device for treatment of osteonecrosis of femoral head: Feasibility and preliminary efficacy of animal study , 2021, Journal of orthopaedic translation.
[13] Qing Jiang,et al. Bioinspired polysaccharide hybrid hydrogel promoted recruitment and chondrogenic differentiation of bone marrow mesenchymal stem cells. , 2021, Carbohydrate polymers.
[14] Y. Yang,et al. The efficacy of lapine preconditioned or genetically modified IL4 over-expressing bone marrow-derived mesenchymal stromal cells in corticosteroid-associated osteonecrosis of the femoral head in rabbits. , 2021, Biomaterials.
[15] Changchun Zhou,et al. 3D printed calcium phosphate scaffolds with controlled release of osteogenic drugs for bone regeneration , 2021 .
[16] Xuan Pei,et al. Fabrication of customized Ti6AI4V heterogeneous scaffolds with selective laser melting: optimization of the architecture for orthopedic implant applications. , 2021, Acta biomaterialia.
[17] Xuan Pei,et al. Customized additive manufacturing of porous Ti6Al4V scaffold with micro-topological structures to regulate cell behavior in bone tissue engineering. , 2021, Materials science & engineering. C, Materials for biological applications.
[18] Xuan Pei,et al. 3D printed titanium scaffolds with homogeneous diamond-like structures mimicking that of the osteocyte microenvironment and its bone regeneration study , 2020, Biofabrication.
[19] Cairu Wang,et al. An animal model of early-stage femoral head osteonecrosis induced by cryo-insult in small tailed Han sheep , 2020, Journal of orthopaedic translation.
[20] D. Kent,et al. Additive manufacturing of low-cost porous titanium-based composites for biomedical applications: Advantages, challenges and opinion for future development , 2020 .
[21] A. A. Zadpoor,et al. Functionality-packed additively manufactured porous titanium implants , 2020, Materials today. Bio.
[22] Lingzhou Zhao,et al. Chitosan-miRNA functionalized microporous titanium oxide surfaces via a layer-by-layer approach with a sustained release profile for enhanced osteogenic activity , 2020, Journal of Nanobiotechnology.
[23] M. Gershwin,et al. The pathogenesis, diagnosis and clinical manifestations of steroid-induced osteonecrosis. , 2020, Journal of autoimmunity.
[24] Q. Dai,et al. Icariin prevents oestrogen deficiency–induced alveolar bone loss through promoting osteogenesis via STAT3 , 2020, Cell proliferation.
[25] Xuan Pei,et al. Dual modulation of crystallinity and macro-/microstructures of 3D printed porous titanium implants to enhance stability and osseointegration. , 2019, Journal of materials chemistry. B.
[26] Xuan Pei,et al. Bionic design and 3D printing of porous titanium alloy scaffolds for bone tissue repair , 2019, Composites Part B: Engineering.
[27] Lai‐Chang Zhang,et al. A Review on Biomedical Titanium Alloys: Recent Progress and Prospect , 2019, Advanced Engineering Materials.
[28] D. Suvà,et al. Osteonecrosis of the femoral head: pathophysiology and current concepts of treatment , 2019, EFORT open reviews.
[29] Y. Zhang,et al. Integrating 3D Printing and Biomimetic Mineralization for Personalized Enhanced Osteogenesis, Angiogenesis, and Osteointegration. , 2018, ACS applied materials & interfaces.
[30] Alfredo Ronca,et al. The biomimetic design and 3D printing of customized mechanical properties porous Ti6Al4V scaffold for load-bearing bone reconstruction , 2018, Materials & Design.
[31] Yujiang Fan,et al. Injectable self-crosslinking HA-SH/Col I blend hydrogels for in vitro construction of engineered cartilage. , 2018, Carbohydrate polymers.
[32] T. Niendorf,et al. On the effect of internal channels and surface roughness on the high-cycle fatigue performance of Ti-6Al-4V processed by SLM , 2018 .
[33] J. Rogers,et al. Custom-Made Titanium 3-Dimensional Printed Interbody Cages for Treatment of Osteoporotic Fracture-Related Spinal Deformity. , 2018, World neurosurgery.
[34] Xiangdong Zhu,et al. Bionic mechanical design of titanium bone tissue implants and 3D printing manufacture , 2017 .
[35] S. Landgraeber,et al. Modifications to advanced Core decompression for treatment of Avascular necrosis of the femoral head , 2017, BMC Musculoskeletal Disorders.
[36] T. Yoshioka,et al. Hip preserving surgery with concentrated autologous bone marrow aspirate transplantation for the treatment of asymptomatic osteonecrosis of the femoral head: retrospective review of clinical and radiological outcomes at 6 years postoperatively , 2017, BMC Musculoskeletal Disorders.
[37] Di Wang,et al. The design and manufacturing of a titanium alloy beak for Grus japonensis using additive manufacturing , 2017 .
[38] Tomiharu Matsushita,et al. Effect of pore size on bone ingrowth into porous titanium implants fabricated by additive manufacturing: An in vivo experiment. , 2016, Materials science & engineering. C, Materials for biological applications.
[39] E. Pakos,et al. Modified porous tantalum rod technique for the treatment of femoral head osteonecrosis. , 2015, World journal of orthopedics.
[40] E. Cheng,et al. Osteonecrosis of the femoral head: diagnosis and classification systems , 2015, Current Reviews in Musculoskeletal Medicine.
[41] Di Chen,et al. Combination Treatment of Biomechanical Support and Targeted Intra‐arterial Infusion of Peripheral Blood Stem Cells Mobilized by Granulocyte‐Colony Stimulating Factor for the Osteonecrosis of the Femoral Head: A Randomized Controlled Clinical Trial , 2015, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[42] Lei Yang,et al. Autologous Bone Marrow Mesenchymal Stem Cells Associated with Tantalum Rod Implantation and Vascularized Iliac Grafting for the Treatment of End-Stage Osteonecrosis of the Femoral Head , 2015, BioMed Research International.
[43] Peng Li,et al. Functionalized scaffolds to enhance tissue regeneration , 2015, Regenerative biomaterials.
[44] Y. Iwamoto,et al. Radiological outcome analyses of transtrochanteric posterior rotational osteotomy for osteonecrosis of the femoral head at a mean follow-up of 11 years , 2013, Journal of orthopaedic science : official journal of the Japanese Orthopaedic Association.
[45] Yang Zhang,et al. Porous tantalum rod implant is an effective and safe choice for early-stage femoral head necrosis: a meta-analysis of clinical trials , 2013, European Journal of Orthopaedic Surgery & Traumatology.
[46] K. Malizos,et al. Outcome after tantalum rod implantation for treatment of femoral head osteonecrosis , 2009, Acta orthopaedica.
[47] T. Seyler,et al. Treatment of early stage osteonecrosis of the femoral head. , 2008, Journal of Bone and Joint Surgery. American volume.
[48] Michael Tanzer,et al. Histopathologic retrieval analysis of clinically failed porous tantalum osteonecrosis implants. , 2008, The Journal of bone and joint surgery. American volume.
[49] Kwang Woo Nam,et al. Fate of untreated asymptomatic osteonecrosis of the femoral head. , 2008, The Journal of bone and joint surgery. American volume.
[50] R. Aldegheri,et al. The tantalum screw for treating femoral head necrosis: rationale and results , 2007, Strategies in trauma and limb reconstruction.
[51] M. McKee,et al. Survivorship analysis and radiographic outcome following tantalum rod insertion for osteonecrosis of the femoral head. , 2006, The Journal of bone and joint surgery. American volume.
[52] D. Robertson,et al. Biomechanical and clinical evaluations of a porous tantalum implant for the treatment of early-stage osteonecrosis. , 2005, The Journal of bone and joint surgery. American volume.
[53] Michael A Mont,et al. Core Decompression of the Femoral Head for Osteonecrosis Using Percutaneous Multiple Small-Diameter Drilling , 2004, Clinical orthopaedics and related research.
[54] A. Saifuddin,et al. MRI of osteonecrosis. , 2004, Clinical radiology.
[55] D. Steinberg,et al. Classification systems for osteonecrosis: an overview. , 2004, The Orthopedic clinics of North America.
[56] T. Brown,et al. A new animal model of femoral head osteonecrosis: one that progresses to human‐like mechanical failure , 2002, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[57] B. Morrey,et al. The natural history of the silent hip in bilateral atraumatic osteonecrosis. , 1993, The Journal of arthroplasty.
[58] A. Seaber,et al. An experimental canine model of osteonecrosis: Characterization of the repair process , 1993, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[59] I. Barber,et al. A new preclinical femoral head osteonecrosis model in sheep , 2010, Archives of Orthopaedic and Trauma Surgery.
[60] M. Rooks,et al. Porous tantalum implant in early osteonecrosis of the hip: preliminary report on operative, survival, and outcomes results. , 2007, The Journal of arthroplasty.