Biomimetic Composite Scaffold With Phosphoserine Signaling for Bone Tissue Engineering Application

被引:22
|
作者
Salgado, Christiane Laranjo [1 ,2 ,3 ]
Brites Teixeira, Beatriz Isabel [1 ,2 ,4 ]
Mendes Monteiro, Fernando Jorge [1 ,2 ,3 ]
机构
[1] Univ Porto, I3S Inst Invest & Inovacao Saude, Porto, Portugal
[2] Univ Porto, INEB, Porto, Portugal
[3] Univ Porto, DEMM, Fac Engn FEUP, Porto, Portugal
[4] Univ Catolica Portuguese, Inst Hlth Sci ICS, Viseu, Portugal
关键词
biomaterials; cryogel scaffold; collagen; nanohydroxyapatite; phosphoserine modification; guided bone tissue regeneration; MESENCHYMAL STEM-CELLS; OSTEOGENIC DIFFERENTIATION; BIOMATERIALS; COLLAGEN; CRYOGELS; BIOCOMPATIBILITY; VASCULARIZATION; MATRIX; INHIBITION; MORPHOLOGY;
D O I
10.3389/fbioe.2019.00206
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
In guided bone tissue engineering, successful ingrowth of MSCs depends primarily on the nature of the scaffold. It is well-known that only seconds after implantation, biomaterials are coated by a layer of adsorbed proteins/peptides which modulates the subsequent cell/scaffold interactions, especially at early times after implantation. In this work, nanohydroxyapatite and collagen based composite materials (Coll/nanoHA) were modified with phosphorylated amino acid (O-phospho-L-serine-OPS) to mimic bone tissue, and induce cell differentiation. The choice for this phosphorylated amino acid is due to the fact that osteopontin is a serine-rich glycol-phosphoprotein and has been associated to the early stages of bone formation, and regeneration. Several concentrations of OPS were added to the Coll/nanoHA scaffold and physico-chemical, mechanical, and in vitro cell behavior were evaluated. Afterwards, the composite scaffold with stronger mechanical and best cellular behavior was tested in vivo, with or without previous in vitro culture of human MSC's (bone tissue engineering). The OPS signaling of the biocomposite scaffolds showed similar cellular adhesion and proliferation, but higher ALP enzyme activity (HBMSC). In vivo bone ectopic formation studies allowed for a thorough evaluation of the materials for MSC's osteogenic differentiation. The OPS-scaffolds results showed that the material could modulated mesenchymal cells behavior in favor of osteogenic differentiation into late osteoblasts that gave raised to their ECM with human bone proteins (osteopontin) and calcium deposits. Finally, OPS-modified scaffolds enhanced cell survival, engraftment, migration, and spatial distribution within the 3D matrix that could be used as a cell-loaded scaffold for tissue engineering applications and accelerate bone regeneration processes.
引用
收藏
页数:16
相关论文
共 50 条
  • [31] Biomimetic nanofibrous gelatin/apatite composite scaffolds for bone tissue engineering
    Liu, Xiaohua
    Smith, Laura A.
    Hu, Jiang
    Ma, Peter X.
    BIOMATERIALS, 2009, 30 (12) : 2252 - 2258
  • [32] A biomimetic three-dimensional woven composite scaffold for functional tissue engineering of cartilage
    Moutos, Franklin T.
    Freed, Lisa E.
    Guilak, Farshid
    NATURE MATERIALS, 2007, 6 (02) : 162 - 167
  • [33] A biomimetic three-dimensional woven composite scaffold for functional tissue engineering of cartilage
    Franklin T. Moutos
    Lisa E. Freed
    Farshid Guilak
    Nature Materials, 2007, 6 : 162 - 167
  • [34] The potential of biomimetic nanofibrous electrospun scaffold comprising dual component for bone tissue engineering
    Jaganathan, Saravana Kumar
    Mani, Mohan Prasath
    Nageswaran, Gomathi
    Krishnasamy, Navaneetha Pandiyaraj
    Ayyar, Manikandan
    INTERNATIONAL JOURNAL OF POLYMER ANALYSIS AND CHARACTERIZATION, 2019, 24 (03) : 204 - 218
  • [35] Preparation of PLLA/HAP/β-TCP composite scaffold for bone tissue engineering
    Wang, Xuejun
    Lou, Tao
    Yang, Jing
    Yang, Zhen
    He, Kunpeng
    APPLIED SCIENCE, MATERIALS SCIENCE AND INFORMATION TECHNOLOGIES IN INDUSTRY, 2014, 513-517 : 143 - 146
  • [36] An Overview of Collagen-Based Composite Scaffold for Bone Tissue Engineering
    Vijayalekha, Ashwathi
    Anandasadagopan, Suresh Kumar
    Pandurangan, Ashok Kumar
    APPLIED BIOCHEMISTRY AND BIOTECHNOLOGY, 2023, 195 (07) : 4617 - 4636
  • [37] A biodegradable porous composite scaffold of PGA/β-TCP for bone tissue engineering
    Cao, Hong
    Kuboyama, Noboru
    BONE, 2010, 46 (02) : 386 - 395
  • [38] PHBV microspheres - PLGA matrix composite scaffold for bone tissue engineering
    Huang, Wei
    Shi, Xuetao
    Ren, Li
    Du, Chang
    Wang, Yingjun
    BIOMATERIALS, 2010, 31 (15) : 4278 - 4285
  • [39] Nano-hydroxyapatite/polymer composite scaffold for bone tissue engineering
    Wang, Huanan
    Li, Yubao
    Zuo, Yi
    Cheng, Lin
    Wang, Yuanyuan
    Li, Hong
    BIOCERAMICS, VOL 19, PTS 1 AND 2, 2007, 330-332 : 365 - +
  • [40] An Overview of Collagen-Based Composite Scaffold for Bone Tissue Engineering
    Ashwathi Vijayalekha
    Suresh Kumar Anandasadagopan
    Ashok Kumar Pandurangan
    Applied Biochemistry and Biotechnology, 2023, 195 : 4617 - 4636