Back to Search Start Over

Supplementary information for the article: Micić, M.; Antonijević, Đ.; Milutinović-Smiljanić, S.; Trisić, D.; Colović, B.; Kosanović, D.; Prokić, B.; Vasić, J.; Zivković, S.; Milašin, J.; Danilović, V.; Đurić, M.; Jokanović, V. Developing a Novel Resorptive Hydroxyapatite-Based Bone Substitute for over-Critical Size Defect Reconstruction: Physicochemical and Biological Characterization and Proof of Concept in Segmental Rabbit’s Ulna Reconstruction. Biomedical Engineering-Biomedizinische Technik 2020, 65 (4), 491–505. https://doi.org/10.1515/bmt-2019-0218.

Authors :
Micić, Milutin
Antonijević, Đorđe
Milutinović-Smiljanić, Sanja
Trisić, Dijana
Colović, Božana
Kosanović, Dejana
Prokić, Bogomir
Vasić, Jugoslav
Zivković, Slavoljub
Milašin, Jelena
Danilović, Vesna
Đurić, Marija
Jokanović, Vukoman
Micić, Milutin
Antonijević, Đorđe
Milutinović-Smiljanić, Sanja
Trisić, Dijana
Colović, Božana
Kosanović, Dejana
Prokić, Bogomir
Vasić, Jugoslav
Zivković, Slavoljub
Milašin, Jelena
Danilović, Vesna
Đurić, Marija
Jokanović, Vukoman
Source :
Biomedical Engineering-Biomedizinische Technik
Publication Year :
2020

Abstract

Figure 1S. Change of the Ca concentration in the solution containing investigated nHAP granules with time. Figure 2S. Change of the Ca concentration with time in biological apatite (BioOss). Figure 3S. The correlation of the ALBO-OS compressive strenght and the time of the material’s soaking in Hank’s solution. Table 1S. Reference point indentation outcomes of the ALBOOS. MH – microhardness, ID 1st - 1st Cycle Indentation Distance; US 1st - 1st Cycle Unloading Slope; CID 1st -1st Cycle Creep Indentation Distance; TID - Total Indentation Distance; IDI - Indentation Distance Increase; Avg CID - Avg Creep Indentation Distance; Avg US - Average Unloading Slope; Avg US - Average Unloading Slope; Avg LS - Average Loading Slope; Avg ED - Average Energy Dissipated. Table 2S. Ph of nHAP after soaking in simulated body fluid. Figure 4S. Microacrhitectural and structural characteristics of nHAP in vitro and in contact with bone tissue in vivo. Adequate microstructure and surface nanotopography provide good environment for cells infiltration in vivo. Note the presence of porous paterns within material structure in vivo as well as the lamellar structure of ALBO-OS. Figure 5S. Schematic representation of the extruder design in custom made laboratory 3D printer: from technical reasons, 3D printer was modified to include two extruders: 1 – syringe extruder, 1.1 – glass syringe, 1.2 – external frame of the extruder 1, 1.3 – electrical heater coil, 1.4 –metal piston of the syringe, 1.5 – syringe nozzle (0,8mm in diameter), 1.6 – gears of the piston drive, 1.7 – piston drive motor with reduction, 1.8 – HAP PLA mixture, 2 – PLA extruder, 2.1 – heater block of the PLA extruder, 2.2 – extruder cooler, 2.3 – PLA extruder motor drive with reduction, 2.4 – PLA filament 1.75mm in diameter, 2.5 – PLA extruder nozzle 0,4mm in diameter. Figure 6S. Paste extruder attached to the head of the printer, with removed electrical heater coil, so the syringe with the metal piston can be visible. A) The

Details

Database :
OAIster
Journal :
Biomedical Engineering-Biomedizinische Technik
Notes :
Biomedical Engineering-Biomedizinische Technik
Publication Type :
Electronic Resource
Accession number :
edsoai.on1398447004
Document Type :
Electronic Resource