Surface functionalization of 3D printed polymer scaffolds to augment stem cell response

被引:132
作者
Jaidev, L. R. [1 ]
Chatterjee, Kaushik [1 ]
机构
[1] Indian Inst Sci, Dept Mat Engn, Bangalore 560012, Karnataka, India
关键词
3D printing; Tissue scaffold; Surface engineering; Hydroxyapatite; Stem cells; MECHANICAL-PROPERTIES; ALKALINE-PHOSPHATASE; COMPOSITE SCAFFOLDS; TISSUE REGENERATION; BONE; HYDROXYAPATITE; OSTEOGENESIS; ACID;
D O I
10.1016/j.matdes.2018.11.018
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Three-dimensional (3D) printing by material extrusion is being widely explored to prepare patient-specific scaffolds from biodegradable polyesters such as poly(lactic acid) (PLA). Although they provide the desired mechanical support, PLA scaffolds lack bioactivity to promote bone regeneration. The aim of this work was to develop a surface engineering approach for enhancing the osteogenic activity of 3D printed PLA scaffolds. Macro-porous PLA scaffolds were prepared by material extrusion with 70.2% porosity. Polyethyleneimine was chemically conjugated to the alkali-treated PLA scaffolds followed by conjugation of citric acid. These polymer-grafted scaffolds were immersed in the simulated body fluid to yield scaffolds coated with calcium-deficient hydroxyapatite (PLA-HaP). Surface roughness and water wettability were enhanced after surface modification. PLA-HaP scaffolds exhibited a steady release of calcium ions in an aqueous medium for 10 days. The adhesion and proliferation of human mesenchymal stem cells (hMSCs) on PLA-HaP was similar to 50% higher than on PLA. Mineral deposition resulting from hMSC osteogenesis on PLA-HaP scaffolds was nearly twice that on PLA scaffolds. This was corroborated by the increase in alkaline phosphatase activity and expression of several osteogenic genes. Thus, this work presents a surface modification strategy to enhance the bioactivity of 3D printed scaffolds for bone tissue regeneration. (C) 2018 Elsevier Ltd.
引用
收藏
页码:44 / 54
页数:11
相关论文
共 53 条
  • [1] Human Mesenchymal Stem Cell Morphology and Migration on Microtextured Titanium
    Banik, Brittany L.
    Riley, Thomas R.
    Platt, Christina J.
    Brown, Justin L.
    [J]. FRONTIERS IN BIOENGINEERING AND BIOTECHNOLOGY, 2016, 4
  • [2] Bohner M, 2000, Injury, V31 Suppl 4, P37
  • [3] Bone tissue engineering using 3D printing
    Bose, Susmita
    Vahabzadeh, Sahar
    Bandyopadhyay, Amit
    [J]. MATERIALS TODAY, 2013, 16 (12) : 496 - 504
  • [4] Cellularized versus decellularized scaffolds for bone regeneration
    Caetano, Guilherme
    Violante, Ricardo
    Sant'Ana, Ana Beatriz
    Murashima, Adriana Batista
    Domingos, Marco
    Gibson, Andrew
    Bartolo, Paulo
    Frade, Marco Andrey
    [J]. MATERIALS LETTERS, 2016, 182 : 318 - 322
  • [5] Combinatorial screening of osteoblast response to 3D calcium phosphate/poly(∈-caprolactone) scaffolds using gradients and arrays
    Chatterjee, Kaushik
    Sun, Limin
    Chow, Laurence C.
    Young, Marian F.
    Simon, Carl G., Jr.
    [J]. BIOMATERIALS, 2011, 32 (05) : 1361 - 1369
  • [6] Mineralization of hydroxyapatite in electrospun nanofibrous poly(L-lactic acid) scaffolds
    Chen, Jinglu
    Chu, Benjamin
    Hsiao, Benjamin S.
    [J]. JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2006, 79A (02) : 307 - 317
  • [7] Self-assembled composite matrix in a hierarchical 3-D scaffold for bone tissue engineering
    Chen, Muwan
    Le, Dang Q. S.
    Baatrup, Anette
    Nygaard, Jens V.
    Hein, San
    Bjerre, Lea
    Kassem, Moustapha
    Zou, Xuenong
    Buenger, Cody
    [J]. ACTA BIOMATERIALIA, 2011, 7 (05) : 2244 - 2255
  • [8] Chia H. N., 2016, 3D PRINTING MED
  • [9] Dalby MJ, 2014, NAT MATER, V13, P558, DOI [10.1038/NMAT3980, 10.1038/nmat3980]
  • [10] 3D printed scaffolds of calcium silicate-doped β-TCP synergize with co-cultured endothelial and stromal cells to promote vascularization and bone formation
    Deng, Yuan
    Jiang, Chuan
    Li, Cuidi
    Li, Tao
    Peng, Mingzheng
    Wang, Jinwu
    Dai, Kerong
    [J]. SCIENTIFIC REPORTS, 2017, 7