Synergistic reinforcement of in situ hardening calcium phosphate composite scaffold for bone tissue engineering

被引:116
|
作者
Xu, HHK [1 ]
Quinn, JB [1 ]
Takagi, S [1 ]
Chow, LC [1 ]
机构
[1] NIST, Paffenbarger Res Ctr, Amer Dent Assoc Fdn, Gaithersburg, MD 20899 USA
关键词
calcium phosphate; scaffold; hydroxyapatite; absorbable mesh; synergistic reinforcement; bone tissue engineering;
D O I
10.1016/S0142-9612(03)00608-2
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Calcium phosphate cement (CPC) hardens in situ to form solid hydroxyapatite, can conform to complex cavity shapes without machining, has excellent osteoconductivity, and is able to be resorbed and replaced by new bone. Therefore, CPC is promising for use in craniofacial and orthopaedic repairs. However, the low strength and lack of macroporosity of CPC limit its use. The aim of the present study was to increase the strength and toughness of CPC while creating macropores suitable for cell infiltration and bone ingrowth, and to investigate the effects of chitosan and mesh reinforcement on the composite properties. Specimens were self-hardened in 3 mm x 4 mm x 25 mm molds, immersed in a physiological solution for 1-84 d, and tested in three-point flexure. After 1 d, the unreinforced CPC control had a flexural strength (mean +/- s.d.; n = 6) of (3.3 +/- 0.4) MPa. The incorporation of chitosan or mesh into CPC increased the strength to (11.9 +/- 0.8) and (21.3 +/- 2.7) M Pa, respectively. The incorporation of both chitosan and mesh synergistically into CPC dramatically increased the strength to (43.2 +/- 4.1) MPa. The work-of-fracture (WOF) (toughness) was also increased by two orders of magnitude. After 84 d immersion in a simulated physiological solution, the meshes in CPC dissolved and formed interconnected cylindrical macropores. The novel CPC scaffold had a flexural strength 39% higher, and WOF 256% higher than the conventional CPC without macropores. The new composite had an elastic modulus within the range for cortical bone and cancellous bone, and a flexural strength higher than those for cancellous bone and sintered porous hydroxyapatite implants. In conclusion, combining two different reinforcing agents together in self-hardening CPC resulted in superior synergistic strengthening compared to the traditional use of a single reinforcing agent. The strong and macroprous CPC scaffold may be useful in stress-bearing craniofacial and orthopaedic repairs. Published by Elsevier Ltd.
引用
收藏
页码:1029 / 1037
页数:9
相关论文
共 50 条
  • [41] An antibacterial and injectable calcium phosphate scaffold delivering human periodontal ligament stem cells for bone tissue engineering
    Chen, Hong
    Yang, Hui
    Weir, Michael D.
    Schneider, Abraham
    Ren, Ke
    Homayounfar, Negar
    Oates, Thomas W.
    Zhang, Ke
    Liu, Jin
    Hu, Tao
    Xu, Hockin H. K.
    RSC ADVANCES, 2020, 10 (66) : 40157 - 40170
  • [42] Synthesis of calcium phosphate-zirconia scaffold and human endometrial adult stem cells for bone tissue engineering
    Alizadeh, Aliakbar
    Moztarzadeh, Fathollah
    Ostad, Seyed Naser
    Azami, Mahmoud
    Geramizadeh, Bita
    Hatam, Gholamreza
    Bizari, Davood
    Tavangar, Seyed Mohammad
    Vasei, Mohammad
    Ai, Jafar
    ARTIFICIAL CELLS NANOMEDICINE AND BIOTECHNOLOGY, 2016, 44 (01) : 66 - 73
  • [43] Biomimetic fabrication of a three-level hierarchical calcium phosphate/collagen/hydroxyapatite scaffold for bone tissue engineering
    Zhou, Changchun
    Ye, Xingjiang
    Fan, Yujiang
    Ma, Liang
    Tan, Yanfei
    Qing, Fangzu
    Zhang, Xingdong
    BIOFABRICATION, 2014, 6 (03)
  • [44] New perspectives: In-situ tissue engineering for bone repair scaffold
    Cao, Shujun
    Zhao, Yao
    Hu, Yimin
    Zou, Lin
    Chen, Jingdi
    COMPOSITES PART B-ENGINEERING, 2020, 202 (202)
  • [45] Porous calcium sulfate/hydroxyapatite whiskers scaffold for bone tissue engineering
    Yan, Tingting
    Wu, Xiaopei
    Cui, Yongshun
    Chen, Qinghua
    Yang, Zhongda
    ADVANCED RESEARCH ON AUTOMATION, COMMUNICATION, ARCHITECTONICS AND MATERIALS, III, 2013, 738 : 38 - 41
  • [46] Preparation of calcium phosphate cement tissue engineering scaffold reinforced with chitin fiber
    Dong Hao
    Ye Jian-Dong
    Wang Xiu-Peng
    Yang Juan-Juan
    JOURNAL OF INORGANIC MATERIALS, 2007, 22 (05) : 1007 - 1010
  • [47] A biomimetic mesoporous silica–polymer composite scaffold for bone tissue engineering
    Ramyapriya Kaliaraj
    Sakthivel Gandhi
    Dhakshinamoorthy Sundaramurthi
    Swaminathan Sethuraman
    Uma Maheswari Krishnan
    Journal of Porous Materials, 2018, 25 : 397 - 406
  • [48] Preparation of PLLA/HAP/β-TCP composite scaffold for bone tissue engineering
    Wang, Xuejun
    Lou, Tao
    Yang, Jing
    Yang, Zhen
    He, Kunpeng
    APPLIED SCIENCE, MATERIALS SCIENCE AND INFORMATION TECHNOLOGIES IN INDUSTRY, 2014, 513-517 : 143 - 146
  • [49] An Overview of Collagen-Based Composite Scaffold for Bone Tissue Engineering
    Vijayalekha, Ashwathi
    Anandasadagopan, Suresh Kumar
    Pandurangan, Ashok Kumar
    APPLIED BIOCHEMISTRY AND BIOTECHNOLOGY, 2023, 195 (07) : 4617 - 4636
  • [50] A biodegradable porous composite scaffold of PGA/β-TCP for bone tissue engineering
    Cao, Hong
    Kuboyama, Noboru
    BONE, 2010, 46 (02) : 386 - 395