Surface-modified 3D starch-based scaffold for improved endothelialization for bone tissue engineering

被引:30
|
作者
Santos, M. I. [1 ,2 ,3 ]
Pashkuleva, I. [2 ,3 ]
Alves, C. M. [2 ,3 ]
Gomes, M. E. [2 ,3 ]
Fuchs, S. [1 ]
Unger, R. E. [1 ]
Reis, R. L. [2 ,3 ]
Kirkpatrick, C. J. [1 ]
机构
[1] Johannes Gutenberg Univ Mainz, Inst Pathol, D-55101 Mainz, Germany
[2] PT Govt Associated Lab, IBB, Braga, Portugal
[3] Univ Minho, 3Bs Res Grp, Headquarters European Inst Excellence Tissue Engn, P-4806909 Taipas, Guimaraes, Portugal
关键词
MARROW STROMAL CELLS; FIBER-MESH SCAFFOLDS; FLOW PERFUSION; OSTEOGENIC DIFFERENTIATION; PROTEIN ADSORPTION; PLASMA TREATMENT; IN-VITRO; GROWTH; ADHESION; FIBRONECTIN;
D O I
10.1039/b819089e
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Providing adequate vascularization is one of the main hurdles to the widespread clinical application of bone tissue engineering approaches. Due to their unique role in blood vessel formation, endothelial cells (EC) play a key role in the establishment of successful vascularization strategies. However, currently available polymeric materials do not generally support EC growth without coating with adhesive proteins. In this work we present argon plasma treatment as a suitable method to render the surface of a 3D starch-based scaffold compatible for ECs, this way obviating the need for protein pre-coating. To this end we studied the effect of plasma modification on surface properties, protein adsorption and ultimately on several aspects regarding EC behaviour. Characterization of surface properties revealed increased surface roughness and change in topography, while at the chemical level a higher oxygen content was demonstrated. The increased surface roughness of the material, together with the changed surface chemistry modulated protein adsorption as indicated by the different adsorption profile observed for vitronectin. In vitro studies showed that human umbilical vein ECs (HUVECs) seeded on plasma-modified scaffolds adhered, remained viable, proliferated, and maintained the typical cobblestone morphology, as observed for positive controls (scaffold pre-coated with adhesive proteins). Furthermore, genotypic expression of endothelial markers was maintained and neighbouring cells expressed PECAM-1 at the single-cell-level. These results indicate that Ar plasma modification is an effective methodology with potential to be incorporated in biomaterial strategies to promote the formation of vascularized engineered bone.
引用
收藏
页码:4091 / 4101
页数:11
相关论文
共 50 条
  • [11] 3D gel-printing of hydroxyapatite scaffold for bone tissue engineering
    Shao, Huiping
    He, Jianzhuang
    Lin, Tao
    Zhang, Zhinan
    Zhang, Yumeng
    Liu, Shuwen
    CERAMICS INTERNATIONAL, 2019, 45 (01) : 1163 - 1170
  • [12] 3D Printed Polyethylene Terephthalate (PET) Scaffold for Bone Tissue Engineering
    Thurzo, A.
    Zamborsky, R.
    Bohac, M.
    Danisovic, L.
    TISSUE ENGINEERING PART A, 2015, 21 : S350 - S350
  • [13] Fabrication and characterization of electrospinning/3D printing bone tissue engineering scaffold
    Yu, Yinxian
    Hua, Sha
    Yang, Mengkai
    Fu, Zeze
    Teng, Songsong
    Niu, Kerun
    Zhao, Qinghua
    Yi, Chengqing
    RSC ADVANCES, 2016, 6 (112): : 110557 - 110565
  • [14] A 3D Bioprinted Pseudo-Bone Drug Delivery Scaffold for Bone Tissue Engineering
    Kondiah, Pariksha Jolene
    Kondiah, Pierre P. D.
    Choonara, Yahya E.
    Marimuthu, Thashree
    Pillay, Viness
    PHARMACEUTICS, 2020, 12 (02)
  • [15] In vivo response to starch-based scaffolds designed for bone tissue engineering applications
    Salgado, A. J.
    Coutinho, O. P.
    Reis, R. L.
    Davies, J. E.
    JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2007, 80A (04) : 983 - 989
  • [16] 3D printed Polylactid Acid based porous scaffold for bone tissue engineering: an in vitro study
    Bodnarova, Simona
    Gromosova, Sylvia
    Hudak, Radovan
    Rosocha, Jan
    Zivcak, Jozef
    Plsikova, Jana
    Vojtko, Marek
    Toth, Teodor
    Harvanova, Denisa
    Izarikova, Gabriela
    Danisovic, L'ubos
    ACTA OF BIOENGINEERING AND BIOMECHANICS, 2019, 21 (04) : 101 - 110
  • [17] Graphene Oxide Enhances Chitosan-Based 3D Scaffold Properties for Bone Tissue Engineering
    Dinescu, Sorina
    Ionita, Mariana
    Ignat, Simona-Rebeca
    Costache, Marieta
    Hermenean, Anca
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2019, 20 (20)
  • [18] Strontium Substituted Nanohydroxyapatite Incorporated 3D Printing Scaffold for Bone Tissue Engineering
    刘顶华
    聂伟
    陈良
    王伟忠
    陶玲
    杜海波
    何创龙
    Journal of Donghua University(English Edition), 2018, 35 (01) : 18 - 23
  • [19] 3D gel printing of porous calcium silicate scaffold for bone tissue engineering
    Zhang, Zhinan
    Shao, Huiping
    Lin, Tao
    Zhang, Yumeng
    He, Jianzhuang
    Wang, Luhui
    JOURNAL OF MATERIALS SCIENCE, 2019, 54 (14) : 10430 - 10436
  • [20] Starch-Based scaffold produced by FDM 3D printing technique as Innovative and biosustainable wound dressing
    Dominici, Franco
    Imbriano, Anna
    Puglia, Debora
    Pagano, Cinzia
    Luzi, Francesca
    Rafanelli, Aurora
    Di Michele, Alessandro
    Bonacci, Francesco
    Ceccarini, Maria Rachele
    Primavilla, Sara
    Valiani, Andrea
    Tensi, Leonardo
    Gutierrez, Carmen Laura Perez
    Barbosa, Raquel De Melo
    Ricci, Maurizio
    Perioli, Luana
    EUROPEAN JOURNAL OF PHARMACEUTICS AND BIOPHARMACEUTICS, 2025, 210