Deep eutectic solvent-assisted fabrication of bioinspired 3D carbon-calcium phosphate scaffolds for bone tissue engineering

被引:4
|
作者
Wysokowski, Marcin [1 ]
Machalowski, Tomasz [1 ]
Idaszek, Joanna [2 ]
Chlanda, Adrian [3 ]
Jaroszewicz, Jakub [2 ]
Heljak, Marcin [2 ]
Niemczak, Michal [1 ]
Piasecki, Adam [4 ]
Gajewska, Marta [5 ]
Ehrlich, Hermann [1 ,6 ]
Swieszkowski, Wojciech [2 ]
Jesionowski, Teofil [1 ]
机构
[1] Poznan Univ Tech, Inst Chem Technol & Engn, Fac Chem Technol, PL-60965 Poznan, Poland
[2] Warsaw Univ Technol, Fac Mat Sci & Engn, PL-02507 Warsaw, Poland
[3] Lukasiewicz Res Network, Inst Microelect & Photon, Flake Graphene Res Grp, PL-02668 Warsaw, Poland
[4] Poznan Univ Tech, Inst Mat Engn, Piotrowo 3, PL-61138 Poznan, Poland
[5] AGH Univ Sci & Technol, Acad Ctr Mat & Nanotechnol, Mickiewicza 30, PL-30059 Krakow, Poland
[6] Adam Mickiewicz Univ, Ctr Adv Technol, Uniwersytetu Poznanskiego 10, PL-61614 Poznan, Poland
关键词
CELL-PROLIFERATION; COMPOSITE SCAFFOLDS; IN-VITRO; HYDROXYAPATITE; DIFFERENTIATION; EXPRESSION; NANOFIBERS; GROWTH; GENES;
D O I
10.1039/d3ra02356g
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Tissue engineering is a burgeoning field focused on repairing damaged tissues through the combination of bodily cells with highly porous scaffold biomaterials, which serve as templates for tissue regeneration, thus facilitating the growth of new tissue. Carbon materials, constituting an emerging class of superior materials, are currently experiencing remarkable scientific and technological advancements. Consequently, the development of novel 3D carbon-based composite materials has become significant for biomedicine. There is an urgent need for the development of hybrids that will combine the unique bioactivity of ceramics with the performance of carbonaceous materials. Considering these requirements, herein, we propose a straightforward method of producing a 3D carbon-based scaffold that resembles the structural features of spongin, even on the nanometric level of their hierarchical organization. The modification of spongin with calcium phosphate was achieved in a deep eutectic solvent (choline chloride : urea, 1 : 2). The holistic characterization of the scaffolds confirms their remarkable structural features (i.e., porosity, connectivity), along with the biocompatibility of & alpha;-tricalcium phosphate (& alpha;-TCP), rendering them a promising candidate for stem cell-based tissue-engineering. Culturing human bone marrow mesenchymal stem cells (hMSC) on the surface of the biomimetic scaffold further verifies its growth-facilitating properties, promoting the differentiation of these cells in the osteogenesis direction. ALP activity was significantly higher in osteogenic medium compared to proliferation, indicating the differentiation of hMSC towards osteoblasts. However, no significant difference between C and C-& alpha;TCP in the same medium type was observed.
引用
收藏
页码:21971 / 21981
页数:11
相关论文
共 50 条
  • [31] Multiwalled carbon nanotube-coating of 3D collagen scaffolds for bone tissue engineering
    Hirata, Eri
    Uo, Motohiro
    Takita, Hiroko
    Akasaka, Tsukasa
    Watari, Fumio
    Yokoyama, Atsuro
    CARBON, 2011, 49 (10) : 3284 - 3291
  • [32] Fabrication of 3D Biomaterial Scaffolds for Bone Tissue Engineering Applications using Additive Manufacturing Technology
    Kim, J.
    Sa, M.
    TISSUE ENGINEERING PART A, 2017, 23 : S15 - S16
  • [33] Biological Response to Bioinspired Microporous 3D-Printed Scaffolds for Bone Tissue Engineering
    Ledda, Mario
    Merco, Miriam
    Sciortino, Antonio
    Scatena, Elisa
    Convertino, Annalisa
    Lisi, Antonella
    Del Gaudio, Costantino
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2022, 23 (10)
  • [34] 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
    Journal of Materials Science: Materials in Medicine, 2005, 16 : 1121 - 1124
  • [35] Effects of vitamin D3 release from 3D printed calcium phosphate scaffolds on osteoblast and osteoclast cell proliferation for bone tissue engineering
    Vu, Ashley A.
    Bose, Susmita
    RSC ADVANCES, 2019, 9 (60) : 34847 - 34853
  • [36] Hydroxyapatite scaffolds for bone tissue engineering made by 3D printing
    Leukers, B
    Gülkan, H
    Irsen, SH
    Milz, S
    Tille, C
    Schieker, M
    Seitz, H
    JOURNAL OF MATERIALS SCIENCE-MATERIALS IN MEDICINE, 2005, 16 (12) : 1121 - 1124
  • [37] DRUG ELUTING 3D PRINTED SCAFFOLDS FOR BONE TISSUE ENGINEERING
    Chakka, Jaidev
    Nakhla, David
    Saha, Sanjeeb
    Elangovan, Satheesh
    Salem, Aliasger
    TISSUE ENGINEERING PART A, 2022, 28 : S487 - S487
  • [38] Enzymatic crosslinked gelatin 3D scaffolds for bone tissue engineering
    Carmen Echave, Mari
    Pimenta-Lopes, Carolina
    Pedraz, Jose Luis
    Mehrali, Mehdi
    Dolatshahi-Pirouz, Alireza
    Ventura, Fransesc
    Orive, Gorka
    INTERNATIONAL JOURNAL OF PHARMACEUTICS, 2019, 562 : 151 - 161
  • [39] 3D Biocompatible Polyester Blend Scaffolds Containing Degradable Calcium Citrate for Bone Tissue Engineering
    Xiao, Yifei
    Wang, Li
    Luo, Kun
    Yang, Yanan
    Zhang, Peicong
    Li, Junfeng
    JOURNAL OF BIONIC ENGINEERING, 2022, 19 (02) : 497 - 506
  • [40] 3D Biocompatible Polyester Blend Scaffolds Containing Degradable Calcium Citrate for Bone Tissue Engineering
    Yifei Xiao
    Li Wang
    Kun Luo
    Yanan Yang
    Peicong Zhang
    Junfeng Li
    Journal of Bionic Engineering, 2022, 19 : 497 - 506