In Vitro Testing of Scaffolds for Mesenchymal Stem Cell-Based Meniscus Tissue Engineering-Introducing a New Biocompatibility Scoring System

被引:14
|
作者
Achatz, Felix P. [1 ]
Kujat, Richard [1 ]
Pfeifer, Christian G. [1 ]
Koch, Matthias [1 ]
Nerlich, Michael [1 ]
Angele, Peter [1 ,2 ]
Zellner, Johannes [1 ]
机构
[1] Univ Med Ctr Regensburg, Dept Trauma Surg, Franz Josef Str Allee 11, D-93053 Regensburg, Germany
[2] Sporthopaedicum Regensburg, Hildegard von Bingen Str 1, D-93053 Regensburg, Germany
来源
MATERIALS | 2016年 / 9卷 / 04期
关键词
meniscus; polyurethane scaffold; composite scaffold; hyaluronic acid; collagen; gelatin; chondrogenesis; human mesenchymal stem cells; biocompatibility; POLYURETHANE SCAFFOLD; CLINICAL-OUTCOMES; FOLLOW-UP; REPAIR; MENISCECTOMY; KNEE; IMPLANT; DIFFERENTIATION; REGENERATION; PROGENITOR;
D O I
10.3390/ma9040276
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
A combination of mesenchymal stem cells (MSCs) and scaffolds seems to be a promising approach for meniscus repair. To facilitate the search for an appropriate scaffold material a reliable and objective in vitro testing system is essential. This paper introduces a new scoring for this purpose and analyzes a hyaluronic acid (HA) gelatin composite scaffold and a polyurethane scaffold in combination with MSCs for tissue engineering of meniscus. The pore quality and interconnectivity of pores of a HA gelatin composite scaffold and a polyurethane scaffold were analyzed by surface photography and Berliner-Blau-BSA-solution vacuum filling. Further the two scaffold materials were vacuum-filled with human MSCs and analyzed by histology and immunohistochemistry after 21 days in chondrogenic media to determine cell distribution and cell survival as well as proteoglycan production, collagen type I and II content. The polyurethane scaffold showed better results than the hyaluronic acid gelatin composite scaffold, with signs of central necrosis in the HA gelatin composite scaffolds. The polyurethane scaffold showed good porosity, excellent pore interconnectivity, good cell distribution and cell survival, as well as an extensive content of proteoglycans and collagen type II. The polyurethane scaffold seems to be a promising biomaterial for a mesenchymal stem cell-based tissue engineering approach for meniscal repair. The new score could be applied as a new standard for in vitro scaffold testing.
引用
收藏
页数:14
相关论文
共 50 条
  • [31] Adipose tissue-derived mesenchymal stem cell-based liver gene delivery
    Li, Hong
    Zhang, Bin
    Lu, Yuanqing
    Jorgensen, Marda
    Petersen, Bryon
    Song, Sihong
    JOURNAL OF HEPATOLOGY, 2011, 54 (05) : 930 - 938
  • [32] Bioactive composite hydrogels as 3D mesenchymal stem cell encapsulation environment for bone tissue engineering: in vitro and in vivo studies
    Vurat, Murat Taner
    Parmaksiz, Mahmut
    Elcin, Ayse Eser
    Elcin, Yasar Murat
    JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2023, 111 (02) : 261 - 277
  • [33] Tissue engineering strategy using mesenchymal stem cell-based chitosan scafolds in growth plate surgery: A preliminary study in rabbits
    Azarpira, M. R.
    Shahcheraghi, G. H.
    Ayatollahi, M.
    Geramizadeh, B.
    ORTHOPAEDICS & TRAUMATOLOGY-SURGERY & RESEARCH, 2015, 101 (05) : 601 - 605
  • [34] Combined Mesenchymal Stem Cell Sheets and rhBMP-2-Releasing Calcium Sulfate-rhBMP-2 Scaffolds for Segmental Bone Tissue Engineering
    Qi, Yiying
    Wang, Yulu
    Yan, Weiqi
    Li, Hang
    Shi, Zhongli
    Pan, Zhijun
    CELL TRANSPLANTATION, 2012, 21 (04) : 693 - 705
  • [35] Effect of Cell Origin and Timing of Delivery for Stem Cell-Based Bone Tissue Engineering Using Biologically Functionalized Hydrogels
    Dosier, Christopher R.
    Uhrig, Brent A.
    Willett, Nick J.
    Krishnan, Laxminarayanan
    Li, Mon-Tzu Alice
    Stevens, Hazel Y.
    Schwartz, Zvi
    Boyan, Barbara D.
    Guldberg, Robert E.
    TISSUE ENGINEERING PART A, 2015, 21 (1-2) : 156 - 165
  • [36] Spatial Organization of Mesenchymal Stem Cells In Vitro-Results from a New Individual Cell-Based Model with Podia
    Hoffmann, Martin
    Kuska, Jens-Peer
    Zscharnack, Matthias
    Loeffler, Markus
    Galle, Joerg
    PLOS ONE, 2011, 6 (07):
  • [37] Informing Stem Cell-Based Tendon Tissue Engineering Approaches with Embryonic Tendon Development
    Okech, William
    Kuo, Catherine K.
    METABOLIC INFLUENCES ON RISK FOR TENDON DISORDERS, 2016, 920 : 63 - 77
  • [38] Stem cell-based approaches in cardiac tissue engineering: controlling the microenvironment for autologous cells
    Augustine, Robin
    Dan, Pan
    Hasan, Anwarul
    Khalaf, Israa Magdi
    Prasad, Parvathy
    Ghosal, Kajal
    Gentile, Carmine
    McClements, Lana
    Maureira, Pablo
    BIOMEDICINE & PHARMACOTHERAPY, 2021, 138
  • [39] The role of Interleukin 1 receptor antagonist in mesenchymal stem cell-based tissue repair and regeneration
    Harrell, Carl Randall
    Markovic, Bojana Simovic
    Fellabaum, Crissy
    Arsenijevic, Nebojsa
    Djonov, Valentin
    Volarevic, Vladislav
    BIOFACTORS, 2020, 46 (02) : 263 - 275
  • [40] Two complementary strategies to improve cell engraftment in mesenchymal stem cell-based therapy: Increasing transplanted cell resistance and increasing tissue receptivity
    Ezquer, Fernando E.
    Ezquer, Marcelo E.
    Vicencio, Jose M.
    Calligaris, Sebastian D.
    CELL ADHESION & MIGRATION, 2017, 11 (01) : 110 - 119