3D and 4D printing hydroxyapatite-based scaffolds for bone tissue engineering and regeneration

被引:17
|
作者
Soleymani, Sina [1 ]
Naghib, Seyed Morteza [1 ]
机构
[1] Iran Univ Sci & Technol IUST, Sch Adv Technol, Nanotechnol Dept, Tehran, Iran
关键词
3D printing; Hydroxyapatite; 4D printing; Polymer; Scaffold; Bone tissue engineering; IN-VITRO; COMPOSITE SCAFFOLDS; DRUG-DELIVERY; HYBRID SCAFFOLDS; MECHANICAL-PROPERTIES; CONTROLLED-RELEASE; CERAMIC SCAFFOLDS; HYALURONIC-ACID; CHITOSAN; COLLAGEN;
D O I
10.1016/j.heliyon.2023.e19363
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
The osseous tissue can be classified as a nanocomposite that encompasses a complex interweaving of organic and inorganic matrices. This intricate amalgamation consists of a collagen component and a mineral phase that are intricately arranged to form elaborate and perforated configurations. Hydroxyapatite, whether synthesized artificially or obtained from natural sources, has garnered considerable attention as a composite material in the field of bone tissue engineering due to its striking resemblance to bone in terms of structure and characteristics. Hydroxyapatite (HA) constitutes the predominant ceramic biomaterial for biomedical applications due to its ability to replicate the mineral composition of vertebrate bone. Nonetheless, it is noteworthy that the present biomimetic substance exhibits unfavorable mechanical characteristics, characterized by insufficient tensile and compressive strength, thus rendering it unsuitable for effective employment in the field of bone tissue engineering. Due to its beneficial attributes, hydroxyapatite (HA) is frequently employed in conjunction with various polymers and crosslinkers as composites to enhance mechanical properties and overall efficacy of implantable biomaterials engineered. The restoration of skeletal defects through the use of customized replacements is an effective way to replace damaged or lost bone structures. This method not only restores the bones' original functions but also reinstates their initial aesthetic appearance. The utilization of hydroxyapatitepolymer composites within 3D-printed grafts necessitates meticulous optimization of both mechanical and biological properties, in order to ensure their suitability for employment in medical devices. The utilization of 3D-printing technology represents an innovative approach in the manufacturing of HA-based scaffolds, which offers advantageous prospects for personalized bone regeneration. The expeditious prototyping method, with emphasis on the application of 3D printing, presents a viable approach in the development of bespoke prosthetic implants, grounded on healthcare data sets. 4D printing approach is an evolved form of 3D printing that utilizes programmable materials capable of altering the intended shape of printed structures, contingent upon single or dual stimulating factors. These factors include aspects such as pH level, temperature, humidity, crosslinking degree, and leaching factors.
引用
收藏
页数:19
相关论文
共 50 条
  • [1] Hydroxyapatite scaffolds for bone tissue engineering made by 3D printing
    Barbara Leukers
    Hülya Gülkan
    Stephan H. Irsen
    Stefan Milz
    Carsten Tille
    Matthias Schieker
    Hermann Seitz
    [J]. Journal of Materials Science: Materials in Medicine, 2005, 16 : 1121 - 1124
  • [2] Hydroxyapatite scaffolds for bone tissue engineering made by 3D printing
    Leukers, B
    Gülkan, H
    Irsen, SH
    Milz, S
    Tille, C
    Schieker, M
    Seitz, H
    [J]. JOURNAL OF MATERIALS SCIENCE-MATERIALS IN MEDICINE, 2005, 16 (12) : 1121 - 1124
  • [3] 3D printing of bone tissue engineering scaffolds
    Wang, Chong
    Huang, Wei
    Zhou, Yu
    He, Libing
    He, Zhi
    Chen, Ziling
    He, Xiao
    Tian, Shuo
    Liao, Jiaming
    Lu, Bingheng
    Wei, Yen
    Wang, Min
    [J]. BIOACTIVE MATERIALS, 2020, 5 (01) : 82 - 91
  • [4] Fabrication and characterization of 3D printing biocompatible crocin-loaded chitosan/collagen/hydroxyapatite-based scaffolds for bone tissue engineering applications
    Jirofti, Nafiseh
    Hashemi, Maryam
    Moradi, Ali
    Kalalinia, Fatemeh
    [J]. INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2023, 252
  • [5] Recent Advances in 3D Printing of Smart Scaffolds for Bone Tissue Engineering and Regeneration
    Yuan, Xun
    Zhu, Wei
    Yang, Zhongyuan
    He, Ning
    Chen, Feng
    Han, Xiaoxiao
    Zhou, Kun
    [J]. ADVANCED MATERIALS, 2024, 36 (34)
  • [6] 3D printing of ceramic scaffolds for engineering of bone tissue
    Barinov S.M.
    Vakhrushev I.V.
    Komlev V.S.
    Mironov A.V.
    Popov V.K.
    Teterina A.Y.
    Fedotov A.Y.
    Yarygin K.N.
    [J]. Inorganic Materials: Applied Research, 2015, 6 (04) : 316 - 322
  • [7] 3D printing of porous hydroxyapatite scaffolds intended for use in bone tissue engineering applications
    Cox, Sophie C.
    Thornby, John A.
    Gibbons, Gregory J.
    Williams, Mark A.
    Mallick, Kajal K.
    [J]. MATERIALS SCIENCE & ENGINEERING C-MATERIALS FOR BIOLOGICAL APPLICATIONS, 2015, 47 : 237 - 247
  • [8] 3D printing of tissue engineering scaffolds: a focus on vascular regeneration
    Pengju Wang
    Yazhou Sun
    Xiaoquan Shi
    Huixing Shen
    Haohao Ning
    Haitao Liu
    [J]. Bio-Design and Manufacturing, 2021, (02) : 344 - 378
  • [9] 3D printing of tissue engineering scaffolds: a focus on vascular regeneration
    Wang, Pengju
    Sun, Yazhou
    Shi, Xiaoquan
    Shen, Huixing
    Ning, Haohao
    Liu, Haitao
    [J]. BIO-DESIGN AND MANUFACTURING, 2021, 4 (02) : 344 - 378
  • [10] 3D printing of tissue engineering scaffolds: a focus on vascular regeneration
    Pengju Wang
    Yazhou Sun
    Xiaoquan Shi
    Huixing Shen
    Haohao Ning
    Haitao Liu
    [J]. Bio-Design and Manufacturing., 2021, 4 (02) - 378