Repair of Cranial Defects in Rabbits with 3D-Printed Hydroxyapatite/Polylactic Acid Composites

被引:2
|
作者
Fan, Guofeng [1 ]
Yang, Liu [2 ]
Liu, Dong [1 ]
Wang, Yongxin [1 ]
Ji, Wenyu [1 ]
Qin, Hu [1 ]
Wang, Zengliang [1 ,3 ]
机构
[1] Xinjiang Med Univ, Affiliated Hosp 1, Ctr Neurosurg, Urumqi 830054, Peoples R China
[2] Charite Univ med Berlin, Inst Radiol, D-10117 Berlin, Germany
[3] Xinjiang Med Univ, Affiliated Hosp 1, Dept Hlth Management Ctr, Urumqi 830054, Peoples R China
关键词
BONE REGENERATION;
D O I
10.1155/2022/7562291
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Objective. The safety and efficacy of three-dimensional- (3D-) printed hydroxyapatite/polylactic acid (HA-PLA) composites in repairing cranial defects were evaluated in a rabbit experimental model. Methods. Twelve New Zealand rabbits were selected as experimental subjects. Two holes (A and B), each with a diameter of approximately 1 cm, were made in the cranium of each rabbit. Hole A served as the experimental manipulation, and hole B served as the control manipulation. A 3D-printed HA-PLA composite was used for placement onto hole A, whereas autologous bone powder was used for placement onto hole B. Samples from the experimental holes and the control holes were collected at 30 and 90 days after surgery. The obtained materials were examined in terms of their morphologies and histopathologies and were also subjected to simultaneous hardness tests. Results. Both the 3D-printed HA-PLA composite and autologous bone powder were able to repair and fill the cranial defects at 30 days and 90 days after surgery. At 30 days after surgery, the microhardness of the area repaired by the HA-PLA composite was lower than that of the area repaired by autogenous bone powder (p < 0.01), but neither of these treatments reached the hardness of normal bone at this time (p < 0.01). At 90 days after surgery, there was no statistically significant difference in the microhardness of the repaired area from the 3D-printed HA-PLA composite compared with that of the repaired area from autologous bone powder (p > 0.05), and there was no statistically significant difference in the hardness of the two repaired areas compared with that of the normal bone (p > 0.05). Hematoxylin-eosin staining showed that bone cells in the HA-PLA material in the experimental group grew and were arranged in an orderly manner. Bone trabeculae and marrow cavities were formed on the pore surface and inside of the HA-PLA scaffold, and the arrangement of bone trabeculae was regular. Conclusion. 3D-printed HA-PLA composites can induce bone regeneration, are biocompatible, have the same strength as autologous bone powder, are able to degrade, and are ultimately safe and effective for repairing cranial defects in rabbits. However, further research is needed to determine the feasibility of 3D-printed HA-PLA composites in human cranioplasty.
引用
收藏
页数:9
相关论文
共 50 条
  • [1] Physicochemical Properties of 3D-Printed Polylactic Acid/Hydroxyapatite Scaffolds
    Perez-Davila, Sara
    Garrido-Gulias, Natalia
    Gonzalez-Rodriguez, Laura
    Lopez-Alvarez, Miriam
    Serra, Julia
    Lopez-Periago, Jose Eugenio
    Gonzalez, Pio
    [J]. POLYMERS, 2023, 15 (13)
  • [2] Recent Progress on 3D-Printed Polylactic Acid and Its Applications in Bone Repair
    Chen, Xibao
    Chen, Gang
    Wang, Gang
    Zhu, Peizhi
    Gao, Chunxia
    [J]. ADVANCED ENGINEERING MATERIALS, 2020, 22 (04)
  • [3] 3D-Printed Biomimetic Hydroxyapatite Composite Scaffold Loaded with Curculigoside for Rat Cranial Defect Repair
    Weng, Yiping
    Yuan, Xiuchen
    Fan, Shijie
    Duan, Weihao
    Tan, Yadong
    Zhou, Ruikai
    Wu, Jingbin
    Shen, Yifei
    Zhang, Zhonghua
    Xu, Hua
    [J]. ACS OMEGA, 2024, 9 (24): : 26097 - 26111
  • [4] Mechanical Reliability and In Vitro Bioactivity of 3D-Printed Porous Polylactic Acid-Hydroxyapatite Scaffold
    Prakash, Chander
    Singh, Gurmider
    Singh, Sunpreet
    Linda, W. L.
    Zheng, H. Y.
    Ramakrishna, Seeram
    Narayan, Roger
    [J]. JOURNAL OF MATERIALS ENGINEERING AND PERFORMANCE, 2021, 30 (07) : 4946 - 4956
  • [5] Mechanical Reliability and In Vitro Bioactivity of 3D-Printed Porous Polylactic Acid-Hydroxyapatite Scaffold
    Chander Prakash
    Gurminder Singh
    Sunpreet Singh
    W. L. Linda
    H. Y. Zheng
    Seeram Ramakrishna
    Roger Narayan
    [J]. Journal of Materials Engineering and Performance, 2021, 30 : 4946 - 4956
  • [6] The Mechanical Properties and Degradation Behavior of 3D-Printed Cellulose Nanofiber/Polylactic Acid Composites
    Zhang, Zhongsen
    Cao, Bingyan
    Jiang, Ning
    [J]. MATERIALS, 2023, 16 (18)
  • [7] Fabrication of 3D-Printed Bone Scaffold of Natural Hydroxyapatite from Fish Bones in Polylactic Acid Composite
    Nadarajan, Vickneson
    Phang, Siew Wei
    Choo, Hui Leng
    [J]. 13TH INTERNATIONAL ENGINEERING RESEARCH CONFERENCE (13TH EURECA 2019), 2020, 2233
  • [8] Correction to: Mechanical Reliability and In Vitro Bioactivity of 3D-Printed Porous Polylactic Acid-Hydroxyapatite Scaffold
    Chander Prakash
    Gurminder Singh
    Sunpreet Singh
    Linda Yongling Wu
    H. Y. Zheng
    Seeram Ramakrishna
    Roger Narayan
    [J]. Journal of Materials Engineering and Performance, 2021, 30 : 4957 - 4957
  • [9] Vancomycin-Loaded 3D-Printed Polylactic Acid-Hydroxyapatite Scaffolds for Bone Tissue Engineering
    Perez-Davila, Sara
    Potel-Alvarellos, Carmen
    Carballo, Raquel
    Gonzalez-Rodriguez, Laura
    Lopez-Alvarez, Miriam
    Serra, Julia
    Diaz-Rodriguez, Patricia
    Landin, Mariana
    Gonzalez, Pio
    [J]. POLYMERS, 2023, 15 (21)
  • [10] Effect of Butyric Anhydride Modification on Properties of Wood-polylactic Acid 3D-printed Composites
    Narlioglu, Nasir
    [J]. BIORESOURCES, 2022, 17 (01) : 132 - 143