scholarly journals Surface modification of alpha-tricalcium phosphate with inositol phosphate for cement fabrication

Author(s):  
Konishi Toshiisa ◽  
Honda Michiyo ◽  
Yoshioka Tomohiko ◽  
Hayakawa Satoshi ◽  
Aizawa Mamoru
2007 ◽  
Vol 330-332 ◽  
pp. 223-226 ◽  
Author(s):  
Li Li Pan ◽  
Yan Bao Li ◽  
Chao Zou ◽  
Wen Jian Weng ◽  
Kui Cheng ◽  
...  

Stearic acid was utilized to modify biphasic alpha-tricalcium phosphate (α-TCP)/hydroxyapatite (HA) powders in the ethanol. The results showed that the dispersion of biphasic α-TCP/HA powders (BCPs) in non-polar matrix improved. And the released content of Ca2+ and PO4 3- of the BCPs soaked in the NaAc-HAc buffer solution (pH 5.0) was almost same as that before modification. Stearic acid could modify the suface properties of BCPs and would not obviously affect their biological characteristics, which affords a good groundwork of application of calcium phosphates powders.


2017 ◽  
Vol 758 ◽  
pp. 194-198
Author(s):  
Kohei Nagata ◽  
Toshiisa Konishi ◽  
Michiyo Honda ◽  
Mamoru Aizawa

We have previously developed a novel chelate-setting β-tricalcium phosphate (β-TCP) cement with non-fragmentation property in vivo. This novel cement has been set on the basis of chelate-setting mechanism of inositol phosphate (IP6). In this study, β-TCP powders were synthesized by mechanochemical method, and the as-prepared powders were heated at 600-1300°C for 1 h. Some properties of the resulting powders were examined. The crystalline phase of the resulting powders in the range of 600-1100°C was of β-TCP single phase. In the cases at 1200°C and 1300°C, the resulting powders were composed of β-TCP and α-TCP. Median particle sizes of the resulting powders increased with heating temperature from 5.35 μm up to 47.7 μm. Dissolution rate of Ca2+ ions from the β-TCP powders was measured by Japanese Industrial Standard T 0330-3. When the heating temperature was at 700°C, the Ca2+ ions solubility was highest among examined ones. The β-TCP powder heated at 700°C for 1 h will be expected as the starting powder for paste-like artificial bone filler with excellent bioresorbability.


2016 ◽  
Vol 720 ◽  
pp. 157-161
Author(s):  
Kohei Nagata ◽  
Toshiisa Konishi ◽  
Michiyo Honda ◽  
Mamoru Aizawa

A novel chelate-setting β-tricalcium phosphate (β-TCP) cement with anti-washout properties have been fabricated previously. This cement has been set on the basis of chelating ability of inositol phosphate (IP6). In this study, the ball-milling and surface-modification conditions of starting β-TCP cement powders were optimized in terms of bioresorbability. Starting powders were prepared by simultaneously ball-milling at 300 rpm for 3 h with 1 mm diameter ZrO2 beads and surface-modifying with 40 cm3 of 3000 ppm IP6 solution. The resulting starting powder was consisted of β-TCP single phase, and had high specific surface area of 48.3 m2∙g-1. Cement pastes were prepared by mixing the starting powder and the aqueous solution composed of 2.5 mass% sodium hydrogen phosphate, 1.5 mass% citric acid and 1.0 mass% sodium alginate at a powder/liquid ratio of 1/0.90 [g∙cm-3] for 2 min. After setting in pure water for 72 h, compressive strength of the cement specimens was higher than that of human cancellous bone. Dissolution rate of Ca2+ ions was measured by according to Japanese Industrial Standard T 0330-3. The results of Ca2+ ions dissolution rate test demonstrated that the cement specimens derived from the above starting powder were the highest dissolution rate among examined ones. This cement would be expected as bone fillers with high bioresobability.


2013 ◽  
Vol 2013 ◽  
pp. 1-11 ◽  
Author(s):  
Toshiisa Konishi ◽  
Minori Mizumoto ◽  
Michiyo Honda ◽  
Yukiko Horiguchi ◽  
Kazuya Oribe ◽  
...  

Biodegradableα-tricalcium phosphate (α-TCP) cement based on the chelate-setting mechanism of inositol phosphate (IP6) was developed. This paper examined the effect of the milling time ofα-TCP powder on the material properties of the cement. In addition, biocompatibility of the result cementin vitrousing osteoblasts andin vivousing rabbit models will be studied as well. Theα-TCP powders were ballmilled using ZrO2beads in pure water for various durations up to 270 minutes, with a single-phaseα-TCP obtained at ballmilling for 120 minutes. The resulting cement was mostly composed ofα-TCP phase, and the compressive strength of the cement was8.5±1.1 MPa, which suggested that the cements set with keeping the crystallite phase of starting cement powder. The cell-culture test indicated that the resulting cements were biocompatible materials.In vivostudies showed that the newly formed bones increased with milling time at a slight distance from the cement specimens and grew mature at 24 weeks, and the surface of the cement was resorbed by tartrate-resistant acid phosphatase-(TRAP-)positive osteoclast-like cells until 24 weeks of implantation. The presentα-TCP cement is promising for application as a novel paste-like artificial bone with biodegradability and osteoconductivity.


2011 ◽  
Vol 119 (1385) ◽  
pp. 35-42 ◽  
Author(s):  
Shuhei TAKAHASHI ◽  
Toshiisa KONISHI ◽  
Koji NISHIYAMA ◽  
Minori MIZUMOTO ◽  
Michiyo HONDA ◽  
...  

2013 ◽  
Vol 24 (6) ◽  
pp. 1383-1394 ◽  
Author(s):  
Toshiisa Konishi ◽  
Shuhei Takahashi ◽  
Zhi Zhuang ◽  
Kohei Nagata ◽  
Minori Mizumoto ◽  
...  

2014 ◽  
Vol 631 ◽  
pp. 113-118
Author(s):  
Toshiisa Konishi ◽  
Michiyo Honda ◽  
Tomohiko Yoshioka ◽  
Satoshi Hayakawa ◽  
Mamoru Aizawa

We have previously developed biodegradable β-tricalcium phosphate (β-TCP) cement based on the chelate-setting mechanism of inositol phosphate (IP6). The β-TCP cement powder for the cement fabrication was prepared via a novel powder preparation process, in which the starting β-TCP powders were prepared by simultaneous ball-milling and surface-modification in the IP6 solution. In the present study, the novel powder preparation process was applied to an α-TCP powder, and effect of milling time and beads size for ball-milling on the material properties of the α-TCP powders was investigated. The α-TCP powder ball-milled in 1000 ppm IP6 solution for 4 h with 2 mm-diameter beads was composed of single phase α-TCP with the smallest particle size of 2.2 µm. Dissolution of 4 h-milled α-TCP powder was approximately twice higher than that of starting α-TCP powder before ball-milling. The α-TCP powder with high dissolution property prepared via the novel powder preparation process is potential candidate for fabrication of the chelate-setting cement.


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