Fabrication of 3D bioactive melt electrowriting composite scaffold with high osteogenic potential

被引:2
|
作者
Abdal-hay, Abdalla [1 ]
Kocak-Oztug, Necla Asli [1 ,2 ]
Sheikh, Faheem A. [3 ]
Han, Pingping [1 ]
Anwar, Saqib [4 ]
Fournier, Benjamin P. J. [5 ,6 ]
Ivanovski, Saso [1 ]
机构
[1] Univ Queensland, Sch Dent, 288 Herston Rd, Herston, Qld 4006, Australia
[2] Istanbul Univ, Fac Dent, Dept Periodontol, TR-34116 Istanbul, Turkiye
[3] Univ Kashmir, Dept Nanotechnol, Nanostruct & Biomimet Lab, Hazratbal 190006, Jammu & Kashmir, India
[4] King Saud Univ, Coll Engn, Ind Engn Dept, Riyadh 11421, Saudi Arabia
[5] Univ Paris Cite, Sorbonne Univ, Ctr Rech Cordeliers, Inserm, F-75006 Paris, France
[6] Univ Paris Cite, Dent Fac, Dept Oral Biol, Paris, France
关键词
Biocompatibility; Hydroxyapatite; Scaffolds; Poly epsilon-caprolactone (PCL); Tissue engineering; IN-VITRO; HYDROXYAPATITE; DIFFERENTIATION; CELLS;
D O I
10.1016/j.colsurfb.2024.114270
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
A key challenge in using melt electrowriting (MEW) technology is incorporating large amounts of bioactive inorganic materials, such as hydroxyapatite (HA). In the present study, following optimization of the fabrication parameters, 40 %-HA (HA40) nanoparticles were pre-mixed into medical-grade polycaprolactone (PCL) and processed using the MEW (MEW) technique to mimic the structure and function of the natural extracellular matrix (ECM) for bone regeneration. The HA40 fibrous composite scaffolds showed continuous writing and obtained a well-connected and orderly stacked fibre with a small diameter size (67 +/- 8.5 mu m). A major result of the present study was the successful enrichment and accumulation of the HA particles, which mostly occurred on the MEW fibre external surfaces. This design allows for direct interfacial interaction with human periodontal ligament cells (hPDLCs). We systematically investigated the behaviour and function of hPDLCs on the HA40 composite scaffold, alongside parameters related to mineralization. The HA40 scaffold demonstrated significantly higher metabolic activity and enhanced expression of osteopontin compared to PCL-only scaffolds, as well as increased levels of ALP and COL1. The study's findings demonstrate that bioactive composite scaffolds, incorporating 40 % HA into m-PCL via MEW, effectively enhance the biological response of the ECM and are promising for potential applications in bone regeneration.
引用
收藏
页数:13
相关论文
共 50 条
  • [31] Bioactive Carbon-Based Hybrid 3D Scaffolds for Osteoblast Growth
    Taale, Mohammadreza
    Schuett, Fabian
    Zheng, Kai
    Mishra, Yogendra Kumar
    Boccaccini, Aldo R.
    Adelung, Rainer
    Selhuber-Unkel, Christine
    ACS APPLIED MATERIALS & INTERFACES, 2018, 10 (50) : 43874 - 43886
  • [32] Silkworm spinning inspired 3D printing toward a high strength scaffold for bone regeneration
    Yao, Yingkai
    Guan, Diqin
    Zhang, Chenke
    Liu, Jing
    Zhu, Xufeng
    Huang, Tingting
    Liu, Jie
    Cui, Hongjuan
    Tang, Kang-lai
    Lin, Jinxin
    Li, Fengyu
    JOURNAL OF MATERIALS CHEMISTRY B, 2022, 10 (36) : 6946 - 6957
  • [33] 3D Printed Chitosan Composite Scaffold for Chondrocytes Differentiation
    Sahai, Nitin
    Gogoi, Manashjit
    Tewari, Ravi Prakash
    CURRENT MEDICAL IMAGING, 2021, 17 (07) : 832 - 842
  • [34] Development of a 3D multifunctional collagen scaffold impregnated with peptide LL-37 for vascularised bone tissue regeneration
    Megha, Kizhakkepurakkal Balachandran
    Syama, Santhakumar
    Sangeetha, Vijayan Padmalayathil
    Vandana, Unnikrishnan
    Oyane, Ayako
    Mohanan, Parayanthala Valappil
    INTERNATIONAL JOURNAL OF PHARMACEUTICS, 2024, 652
  • [35] A novel collagen/hydroxyapatite/poly(lactide-co-ε-caprolactone) biodegradable and bioactive 3D porous scaffold for bone regeneration
    Akkouch, Adil
    Zhang, Ze
    Rouabhia, Mahmoud
    JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2011, 96A (04) : 693 - 704
  • [36] 4D Biofabrication Using a Combination of 3D Printing and Melt-Electrowriting of Shape-Morphing Polymers
    Constante, Gissela
    Apsite, Indra
    Alkhamis, Hanin
    Dulle, Martin
    Schwarzer, Madeleine
    Caspari, Anja
    Synytska, Alla
    Salehi, Sahar
    Ionov, Leonid
    ACS APPLIED MATERIALS & INTERFACES, 2021, 13 (11) : 12767 - 12776
  • [37] Fabrication of bioactive glass/phosphorylated chitosan composite scaffold and its effects on MC3T3-E1 cells
    Liu, Wenxiu
    Han, Guojiang
    Qin, Liying
    Dong, Wenli
    Han, Baoqin
    Jin, Liming
    Yang, Yan
    BIOMEDICAL MATERIALS, 2024, 19 (02)
  • [38] Advances in the Fabrication of Scaffold and 3D Printing of Biomimetic Bone Graft
    Bisht, Bharti
    Hope, Ashley
    Mukherjee, Anubhab
    Paul, Manash K.
    ANNALS OF BIOMEDICAL ENGINEERING, 2021, 49 (04) : 1128 - 1150
  • [39] Advances in the Fabrication of Scaffold and 3D Printing of Biomimetic Bone Graft
    Bharti Bisht
    Ashley Hope
    Anubhab Mukherjee
    Manash K. Paul
    Annals of Biomedical Engineering, 2021, 49 : 1128 - 1150
  • [40] Micro/nano replication and 3D assembling techniques for scaffold fabrication
    Lima, M. J.
    Correlo, V. M.
    Reis, R. L.
    MATERIALS SCIENCE & ENGINEERING C-MATERIALS FOR BIOLOGICAL APPLICATIONS, 2014, 42 : 615 - 621