3D printing of PEEK-cHAp scaffold for medical bone implant

被引:73
|
作者
Oladapo, Bankole I. [1 ,4 ]
Zahedi, S. Abolfazl [1 ]
Ismail, Sikiru O. [2 ]
Omigbodun, Francis T. [3 ]
Bowoto, Oluwole K. [1 ]
Olawumi, Mattew A. [4 ]
Muhammad, Musa A. [5 ]
机构
[1] De Montfort Univ, Sch Engn & Sustainable Dev, Leicester, Leics, England
[2] Univ Hertfordshire, Sch Phys Engn & Comp Sci, Engn Res Ctr, Hatfield, Herts, England
[3] Loughborough Univ, Mech Engn, Loughborough, Leics, England
[4] De Montfort Univ, Fac Engn Comp & Media, Leicester, Leics, England
[5] Coventry Univ, Fac Engn Environm & Comp, Coventry, W Midlands, England
关键词
3D printing; PEEK– cHAp biocomposite; Nanostructure; Bone implant; Composite morphing; TENSION-TENSION FATIGUE; FUSED DEPOSITION; MECHANICAL-PROPERTIES; POLYETHERETHERKETONE; BIOACTIVITY; OSSEOINTEGRATION; MICROSTRUCTURE; COMPOSITE; BEHAVIOR; SURFACE;
D O I
10.1007/s42242-020-00098-0
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
The major drawback associated with PEEK implants is their biologically inert surface, which caused unsatisfactory cellular response and poor adhesion between the implants and surrounding soft tissues against proper bone growth. In this study, polyetheretherketone (PEEK) was incorporated with calcium hydroxyapatite (cHAp) to fabricate a PEEK-cHAp biocomposite, using the fused deposition modeling (FDM) method and a surface treatment strategy to create microporous architectures onto the filaments of PEEK lattice scaffold. Also, nanostructure and morphological tests of the PEEK-cHAp biocomposite were modeled and analyzed on the FDM-printed PEEK-cHAp biocomposite sample to evaluate its mechanical and thermal strengths as well as in vitro cytotoxicity via a scanning electron microscope (SEM). A technique was used innovatively to create and investigate the porous nanostructure of the PEEK with controlled pore size and distribution to promote cell penetration and biological integration of the PEEK-cHAp into the tissue. In vivo tests demonstrated that the surface-treated micropores facilitated the adhesion of newly regenerated soft tissues to form tight implant-tissue interfacial bonding between the cHAp and PEEK. The results of the cell culture depicted that PEEK-cHAp exhibited better cell proliferation attachment spreading and higher alkaline phosphatase activity than PEEK alone. Apatite islands formed on the PEEK-cHAp composite after immersion in simulated body fluid of Dulbecco's modified Eagle medium (DMEM) for 14 days and grew continuously with more or extended periods. The microstructure treatment of the crystallinity of PEEK was comparatively and significantly different from the PEEK-cHAp sample, indicating a better treatment of PEEK-cHAp. The in vitro results obtained from the PEEK-cHAp biocomposite material showed its biodegradability and performance suitability for bone implants. This study has potential applications in the field of biomedical engineering to strengthen the conceptual knowledge of FDM and medical implants fabricated from PEEK-cHAp biocomposite materials.
引用
收藏
页码:44 / 59
页数:16
相关论文
共 50 条
  • [21] Strontium Substituted Nanohydroxyapatite Incorporated 3D Printing Scaffold for Bone Tissue Engineering
    刘顶华
    聂伟
    陈良
    王伟忠
    陶玲
    杜海波
    何创龙
    [J]. Journal of Donghua University(English Edition), 2018, 35 (01) : 18 - 23
  • [22] RETRACTED: 3D printing of surface characterisation and finite element analysis improvement of PEEK-HAP-GO in bone implant (Retracted Article)
    Oladapo, Bankole I.
    Zahedi, S. Abolfazl
    Chong, Seng
    Omigbodun, Francis T.
    Malachi, Idowu O.
    [J]. INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2020, 106 (3-4): : 829 - 841
  • [23] 3D gel printing of porous calcium silicate scaffold for bone tissue engineering
    Zhang, Zhinan
    Shao, Huiping
    Lin, Tao
    Zhang, Yumeng
    He, Jianzhuang
    Wang, Luhui
    [J]. JOURNAL OF MATERIALS SCIENCE, 2019, 54 (14) : 10430 - 10436
  • [24] 3D printing of lithium osteogenic bioactive composite scaffold for enhanced bone regeneration
    Wang, Wenzhao
    Wei, Jianlu
    Lei, Dong
    Wang, Suning
    Zhang, Boqing
    Shang, Shenghui
    Bai, Baoshuai
    Zhao, Chenxi
    Zhang, Wencan
    Zhou, Changchun
    Zhou, Hengxing
    Feng, Shiqing
    [J]. COMPOSITES PART B-ENGINEERING, 2023, 256
  • [25] 3D gel printing of porous calcium silicate scaffold for bone tissue engineering
    Zhinan Zhang
    Huiping Shao
    Tao Lin
    Yumeng Zhang
    Jianzhuang He
    Luhui Wang
    [J]. Journal of Materials Science, 2019, 54 : 10430 - 10436
  • [26] 3D printing of personalized magnesium composite bone tissue engineering scaffold for bone and angiogenesis regeneration
    Wang, Wenzhao
    Wang, Ling
    Zhang, Boqing
    Shang, Shenghui
    Zhao, Chenxi
    Zhang, Wencan
    Chen, Jing
    Zhou, Changchun
    Zhou, Hengxing
    Feng, Shiqing
    [J]. CHEMICAL ENGINEERING JOURNAL, 2024, 484
  • [27] Medical 3D Printing for the Radiologist
    Mitsouras, Dimitris
    Liacouras, Peter
    Imanzadeh, Amir
    Giannopoulos, Andreas A.
    Cai, Tianrun
    Kumamaru, Kanako K.
    George, Elizabeth
    Wake, Nicole
    Caterson, Edward J.
    Pomahac, Bohdan
    Ho, Vincent B.
    Grant, Gerald T.
    Rybicki, Frank J.
    [J]. RADIOGRAPHICS, 2015, 35 (07) : 1966 - 1989
  • [28] 3D Printing in Medical Applications
    Sun, Zhonghua
    [J]. CURRENT MEDICAL IMAGING, 2021, 17 (07) : 811 - 813
  • [29] 3D Printing Medical Devices
    DeSimone, Joseph
    [J]. AMERICAN SCIENTIST, 2022, 110 (04) : 235 - 237
  • [30] 3D printing and medical imaging
    Squelch, Andrew
    [J]. JOURNAL OF MEDICAL RADIATION SCIENCES, 2018, 65 (03): : 171 - 172