Dual nanofiber and graphene reinforcement of 3D printed biomimetic supports for bone tissue repair

被引:0
|
作者
Cojocaru, Elena [1 ]
Oprea, Madalina [1 ,2 ]
Vlasceanu, George Mihail [1 ,2 ]
Nicolae, Madalina-Cristina [1 ]
Popescu, Roxana-Cristina [2 ,3 ]
Mereuta, Paul-Emil [4 ]
Toader, Alin-Georgian [1 ,2 ]
Ionita, Mariana [1 ,2 ,5 ]
机构
[1] Natl Univ Sci & Technol POLITEHN Bucharest, Adv Polymer Mat Grp, 1-7 Gh Polizu St, Bucharest 011061, Romania
[2] Natl Univ Sci & Technol POLITEHN Bucharest, Fac Med Engn, 1-7 Gh Polizu St, Bucharest 011061, Romania
[3] Natl Inst Res & Dev Phys & Nucl Engn Horia Hulubei, Dept Life & Environm Phys, 30 Reactor St, Magurele, Romania
[4] Natl Inst Res & Dev Phys & Nucl Engn Horia Hulubei, Dept Appl Nucl Phys, 30 Reactor St, Magurele, Romania
[5] Natl Univ Sci & Technol POLITEHN Bucharest, Ctr Excellence Bioengn, 6 Iuliu Maniu Blvd, Campus Bldg, Bucharest 061344, Romania
关键词
ALGINATE/GRAPHENE OXIDE COMPOSITE; IN-VITRO; SCAFFOLDS; ALGINATE; ADSORPTION; DUROTAXIS; BEADS;
D O I
10.1039/d4ra06167e
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Replicating the intricate architecture of the extracellular matrix (ECM) is an actual challenge in the field of bone tissue engineering. In the present research study, calcium alginate/cellulose nanofibrils-based 3D printed scaffolds, double-reinforced with chitosan/polyethylene oxide electrospun nanofibers (NFs) and graphene oxide (GO) were prepared using the 3D printing technique. The porous matrix was provided by the calcium alginate, while the anisotropy degree and mechanical properties were ensured by the addition of fillers with different sizes and shapes (CNFs, NFs, GO), similar to the components naturally found in bone ECM. Surface morphology and 3D internal microstructure were analyzed using scanning electron microscopy (SEM) and micro-computed tomography (mu-CT), which evidenced a synergistic effect of the reinforcing and functional fibers addition, as well as of the GO sheets that seem to govern materials structuration. Also, the nanoindentation measurements showed significant differences in the elasticity and viscosity modulus, depending on the measurement point, this supported the anisotropic character of the scaffolds. In vitro assays performed on MG-63 osteoblast cells confirmed the biocompatibility of the calcium alginate-based scaffolds and highlighted the osteostimulatory and mineralization enhancement effect of GO. In virtue of their biocompatibility, structural complexity similar with the one of native bone ECM, and biomimetic mechanical characteristics (e.g. high mechanical strength, durotaxis), these novel materials were considered appropriate for specific functional needs, like guided support for bone tissue formation. Replicating the intricate architecture of the extracellular matrix by designing anisotropic biomimetic scaffolds with dual reinforcement of graphene oxide and electrospun nanofibers.
引用
收藏
页码:32517 / 32532
页数:16
相关论文
共 50 条
  • [21] Fabrication of graphene/gelatin/chitosan/tricalcium phosphate 3D printed scaffolds for bone tissue regeneration applications
    Huigen Lu
    Xuekang Pan
    Minjie Hu
    Jianqiao Zhang
    Yefeng Yu
    Xuqi Hu
    Kai Jiang
    Applied Nanoscience, 2021, 11 : 335 - 346
  • [22] Fabrication of graphene/gelatin/chitosan/tricalcium phosphate 3D printed scaffolds for bone tissue regeneration applications
    Lu, Huigen
    Pan, Xuekang
    Hu, Minjie
    Zhang, Jianqiao
    Yu, Yefeng
    Hu, Xuqi
    Jiang, Kai
    APPLIED NANOSCIENCE, 2021, 11 (02) : 335 - 346
  • [23] Evaluation of 3D hybrid microfiber/nanofiber scaffolds for bone tissue engineering
    Ostrowska, B.
    Jaroszewicz, J.
    Zaczynska, E.
    Tomaszewski, W.
    Swieszkowski, W.
    Kurzydlowski, K. J.
    BULLETIN OF THE POLISH ACADEMY OF SCIENCES-TECHNICAL SCIENCES, 2014, 62 (03) : 551 - 556
  • [24] Dual 3D printing for vascularized bone tissue regeneration
    Hann, Sung Yun
    Cui, Haitao
    Esworthy, Timothy
    Zhou, Xuan
    Lee, Se-jun
    Plesniak, Michael W.
    Zhang, Lijie Grace
    ACTA BIOMATERIALIA, 2021, 123 : 263 - 274
  • [25] REPAIR VERSUS REGENERATION - CELL DELIVERY VIA A 3D PRINTED BIOMIMETIC WOUND DRESSING
    Shafiee, Abbas
    TISSUE ENGINEERING PART A, 2022, 28 : S588 - S588
  • [26] Engineering 3D Printed Biomimetic Osteochondral Scaffolds
    Kim, Y.
    Alimperti, S.
    TISSUE ENGINEERING PART A, 2023, 29 (9-10)
  • [27] Tribological behavior of 3D printed biomimetic surfaces
    Mzali, Slah
    Elwasli, Fatma
    Mezlini, Salah
    Hajlaoui, Khalil
    Alrasheedi, Nashmi H.
    TRIBOLOGY INTERNATIONAL, 2024, 193
  • [28] 3D printed structures for delivery of biomolecules and cells: tissue repair and regeneration
    Park, Ju Young
    Gao, Ge
    Jang, Jinah
    Cho, Dong-Woo
    JOURNAL OF MATERIALS CHEMISTRY B, 2016, 4 (47) : 7521 - 7539
  • [29] Custom Repair of Mandibular Bone Defects with 3D Printed Bioceramic Scaffolds
    Shao, H.
    Sun, M.
    Zhang, F.
    Liu, A.
    He, Y.
    Fu, J.
    Yang, X.
    Wang, H.
    Gou, Z.
    JOURNAL OF DENTAL RESEARCH, 2018, 97 (01) : 68 - 76
  • [30] Mussel-inspired HA@TA-CS/SA biomimetic 3D printed scaffolds with antibacterial activity for bone repair
    Ji, Cheng
    Zhang, Chengcheng
    Xu, Zeya
    Chen, Yan
    Gan, Yanming
    Zhou, Minghui
    Li, Lan
    Duan, Qinying
    Huang, Tingting
    Lin, Jinxin
    FRONTIERS IN BIOENGINEERING AND BIOTECHNOLOGY, 2023, 11