A novel degradable PCL/PLLA strapping band for internal fixation of fracture
暂无分享,去创建一个
Zeyuan Zhong | Baoyan Jin | Chongjing Zhang | Zichen Liu | Zhenhua Zhang | Dejian Li | Min Zhu | Baoqing Yu
[1] Anjun Tan,et al. The correlation between serum total alkaline phosphatase and bone mineral density in young adults , 2022, BMC Musculoskeletal Disorders.
[2] S. Hofmann,et al. Alkaline Phosphatase Activity of Serum Affects Osteogenic Differentiation Cultures , 2022, ACS omega.
[3] D. Koli,et al. Comparative Evaluation of Osteocalcin in Peri-implant Crevicular Fluid and Radiographic Bone Loss in Immediate Loading and Delayed Loading Protocols: A Preliminary Split-Mouth Randomized Controlled Trial. , 2022, The International journal of prosthodontics.
[4] Luís Costa,et al. A Tailored Approach for Appendicular Impending and Pathologic Fractures in Solid Cancer Metastases , 2022, Cancers.
[5] Cynthia S. Wong,et al. Development of 3D Printed Biodegradable Mesh with Antimicrobial Properties for Pelvic Organ Prolapse , 2022, Polymers.
[6] G. Karsenty,et al. Osteocalcin and the physiology of danger , 2021, FEBS letters.
[7] I. Ahmad,et al. Comprehensive exploration of natural degradation of poly(lactic acid) blends in various degradation media: A review. , 2021, International journal of biological macromolecules.
[8] V. Altstädt,et al. Investigation of the Thermal and Hydrolytic Degradation of Polylactide during Autoclave Foaming , 2021, Polymers.
[9] Vikas Nanda,et al. Poly(ε‐caprolactone): A potential polymer for biodegradable food packaging applications , 2021, Packaging Technology and Science.
[10] S. Sakurai,et al. Confined crystallization of Poly(ethylene glycol) in spherulites of Poly(L-lactic acid) in a PLLA/PEG blend , 2021 .
[11] Y. Zuo,et al. Physicochemical and In Vitro Degradation Behaviors of Fibrous Membranes with Different Polycaprolactone and Gelatin Proportions. , 2020, Journal of nanoscience and nanotechnology.
[12] Yanmei Zhang,et al. Study on the anti-infection ability of vancomycin cationic liposome combined with polylactide fracture internal fixator. , 2020, International journal of biological macromolecules.
[13] Shuqiong Liu,et al. Fabrication and characterization of polylactic acid/polycaprolactone composite macroporous micro-nanofiber scaffolds by phase separation , 2020 .
[14] J. Petriz,et al. A Novel Flow Cytometric Method to Study Cytotoxic Activity in Whole Blood Samples , 2020, Cytometry. Part A : the journal of the International Society for Analytical Cytology.
[15] M. Zhang,et al. Degradation Behaviors of Biodegradable Aliphatic Polyesters and Polycarbonates , 2020 .
[16] Arvin Bagheri Saed,et al. 3D printed PCL scaffold reinforced with continuous biodegradable fiber yarn: A study on mechanical and cell viability properties , 2020 .
[17] D. Castellano,et al. Polycaprolactone/gelatin-based scaffolds with tailored performance: in vitro and in vivo validation. , 2020, Materials science & engineering. C, Materials for biological applications.
[18] Bridgette M Budhlall,et al. In-vitro biodegradation study of poly(ε-caprolactone) films using a 3D printed helical flow prototype to simulate the physiological conditions for cardiovascular implanted devices , 2019, Biomedical Physics & Engineering Express.
[19] Dietmar W. Hutmacher,et al. Degradation mechanisms of polycaprolactone in the context of chemistry, geometry and environment , 2019, Progress in Polymer Science.
[20] C. Bowman,et al. Developmental and reproductive toxicity studies in Sprague-Dawley rats and New Zealand white rabbits with palbociclib , 2019, Reproductive Toxicology.
[21] M. Šlouf,et al. Phase Structure, Compatibility, and Toughness of PLA/PCL Blends: A Review , 2019, Front. Mater..
[22] C. Breuer,et al. Degradation and in vivo evaluation of polycaprolactone, poly(ε-caprolactone-co-L-lactide), and poly-L-lactic acid as scaffold sealant polymers for murine tissue-engineered vascular grafts. , 2019, Regenerative medicine.
[23] M. Surmeneva,et al. In vitro degradation behaviour of hybrid electrospun scaffolds of polycaprolactone and strontium-containing hydroxyapatite microparticles , 2019, Polymer Degradation and Stability.
[24] Weiguo Zhang,et al. Biomimetic poly(glycerol sebacate)/polycaprolactone blend scaffolds for cartilage tissue engineering , 2019, Journal of Materials Science: Materials in Medicine.
[25] P. Carreau,et al. Poly (lactic acid) blends: Processing, properties and applications. , 2019, International journal of biological macromolecules.
[26] Erin E. Yost,et al. Hazards of diisobutyl phthalate (DIBP) exposure: A systematic review of animal toxicology studies , 2018, Environment international.
[27] X. Mo,et al. Macroporous nanofibrous vascular scaffold with improved biodegradability and smooth muscle cells infiltration prepared by dual phase separation technique , 2018, International journal of nanomedicine.
[28] M. Kaseem,et al. Polylactic acid blends: The future of green, light and tough , 2018, Progress in Polymer Science.
[29] Akihito Yamashita,et al. Historical control data on developmental toxicity studies in rats , 2018, Congenital anomalies.
[30] J. R. Olson,et al. Effect of hydroxyapatite concentration on high-modulus composite for biodegradable bone-fixation devices. , 2017, Journal of biomedical materials research. Part B, Applied biomaterials.
[31] Phil Coates,et al. Fabrication of drug-loaded anti-infective guided tissue regeneration membrane with adjustable biodegradation property. , 2015, Colloids and surfaces. B, Biointerfaces.
[32] Farah Hanani Zulkifli,et al. In vitro degradation study of novel HEC/PVA/collagen nanofibrous scaffold for skin tissue engineering applications , 2014 .
[33] S. Hatzikiriakos,et al. Thermorheological properties of poly (ε‐caprolactone)/polylactide blends , 2012 .
[34] Dietmar W Hutmacher,et al. Dynamics of in vitro polymer degradation of polycaprolactone-based scaffolds: accelerated versus simulated physiological conditions , 2008, Biomedical materials.
[35] Cunxian Song,et al. The in vivo degradation, absorption and excretion of PCL-based implant. , 2006, Biomaterials.
[36] Philippe Poitras,et al. Internal plate fixation of fractures: short history and recent developments , 2006, Journal of orthopaedic science : official journal of the Japanese Orthopaedic Association.
[37] N. Nomura,et al. Dry Friction and Wear Behavior of Forged Co-29Cr-6Mo Alloy without Ni and C Additions for Implant Applications , 2005 .
[38] S. Santavirta,et al. Bioabsorbable fixation devices in trauma and bone surgery: current clinical standing , 2004, Expert review of medical devices.
[39] Mitsuo Niinomi,et al. Mechanical properties of biomedical titanium alloys , 1998 .
[40] Xiaochun Li,et al. Orthopedic implants and devices for bone fractures and defects: Past, present and perspective , 2020 .