TY - JOUR
T1 - Enhanced osseointegration capability of poly(Ether ether ketone) via combined phosphate and calcium surface-functionalization
AU - Sunarso,
AU - Tsuchiya, Akira
AU - Toita, Riki
AU - Tsuru, Kanji
AU - Ishikawa, Kunio
N1 - Funding Information:
This research was funded by AMED (JP19im0502004), JSPS KAKENHI (JP18K12091), and Hibah Q1Q2 2019 funded by DRPM Universitas Indonesia (NKB-0256/UN2.R3.1/HKP.05.00/2019). The APC was funded by Hibah Q1Q2 2019 funded by DRPM Universitas Indonesia (NKB-0256/UN2.R3.1/HKP.05.00/2019).
Funding Information:
Funding: This research was funded by AMED (JP19im0502004), JSPS KAKENHI (JP18K12091), and Hibah Q1Q2 2019 funded by DRPM Universitas Indonesia (NKB-0256/UN2.R3.1/HKP.05.00/2019). The APC was funded by Hibah Q1Q2 2019 funded by DRPM Universitas Indonesia (NKB-0256/UN2.R3.1/HKP.05.00/2019).
Publisher Copyright:
© 2019 by the authors. Licensee MDPI, Basel, Switzerland.
PY - 2020/1/1
Y1 - 2020/1/1
N2 - Biomedical applications of poly(ether ether ketone) (PEEK) are hindered by its inherent bioinertness and lack of osseointegration capability. In the present study, to enhance osteogenic activity and, hence, the osseointegration capability of PEEK, we proposed a strategy of combined phosphate and calcium surface-functionalization, in which ozone-gas treatment and wet chemistry were used for introduction of hydroxyl groups and modification of phosphate and/or calcium, respectively. Surface functionalization significantly elevated the surface hydrophilicity without changing the surface roughness or topography. The cell study demonstrated that immobilization of phosphate or calcium increased the osteogenesis of rat mesenchymal stem cells compared with bare PEEK, including cell proliferation, alkaline phosphatase activity, and bone-like nodule formation. Interestingly, further enhancement was observed for samples co-immobilized with phosphate and calcium. Furthermore, in the animal study, phosphate and calcium co-functionalized PEEK demonstrated significantly enhanced osseointegration, as revealed by a greater direct bone-to-implant contact ratio and bond strength between the bone and implant than unfunctionalized and phosphate-functionalized PEEK, which paves the way for the orthopedic and dental application of PEEK.
AB - Biomedical applications of poly(ether ether ketone) (PEEK) are hindered by its inherent bioinertness and lack of osseointegration capability. In the present study, to enhance osteogenic activity and, hence, the osseointegration capability of PEEK, we proposed a strategy of combined phosphate and calcium surface-functionalization, in which ozone-gas treatment and wet chemistry were used for introduction of hydroxyl groups and modification of phosphate and/or calcium, respectively. Surface functionalization significantly elevated the surface hydrophilicity without changing the surface roughness or topography. The cell study demonstrated that immobilization of phosphate or calcium increased the osteogenesis of rat mesenchymal stem cells compared with bare PEEK, including cell proliferation, alkaline phosphatase activity, and bone-like nodule formation. Interestingly, further enhancement was observed for samples co-immobilized with phosphate and calcium. Furthermore, in the animal study, phosphate and calcium co-functionalized PEEK demonstrated significantly enhanced osseointegration, as revealed by a greater direct bone-to-implant contact ratio and bond strength between the bone and implant than unfunctionalized and phosphate-functionalized PEEK, which paves the way for the orthopedic and dental application of PEEK.
KW - Calcium
KW - Osseointegration
KW - Phosphate
KW - Poly(ether ether ketone)
KW - Surface modification
UR - https://www.scopus.com/pages/publications/85077380267
U2 - 10.3390/ijms21010198
DO - 10.3390/ijms21010198
M3 - Article
C2 - 31892154
AN - SCOPUS:85077380267
SN - 1661-6596
VL - 21
JO - International Journal of Molecular Sciences
JF - International Journal of Molecular Sciences
IS - 1
M1 - 198
ER -