Aligned nanofiber material supports cell growth and increases osteogenesis in canine adipose-derived mesenchymal stem cells in vitro

被引:21
|
作者
Pandey, Sony [1 ]
Rathore, Kusum [1 ,3 ]
Johnson, Jed [2 ]
Cekanova, Maria [1 ]
机构
[1] Univ Tennessee, Coll Vet Med, Dept Small Anim Clin Sci, Knoxville, TN 37996 USA
[2] Nanofiber Solut Inc, Hilliard, OH 43026 USA
[3] Univ Tennessee Res Fdn, Knoxville, TN 37996 USA
关键词
random-orientated PCL nanofibers; aligned-orientated PCL nanofibers; mesenchymal stem cells; 3-D cell culture; canine; ELECTROSPUN NANOFIBERS; DIFFERENTIATION; ALIGNMENT; SCAFFOLDS; MATRIX;
D O I
10.1002/jbm.a.36381
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Tissue engineering shows great promise for the treatment of degenerative diseases, including bone repair. Polymer nanofibers provide a three-dimensional (3-D) scaffold for attachment and growth of mesenchymal stem cells. Increasing evidence supports that fiber alignment on scaffolds plays a major role in the viability and differentiation of stem cells. We compared the cell viability of canine adipose tissue-derived mesenchymal stem cells (cADMSCs) cultured in the aligned- (NanoAligned) and random- (NanoECM) oriented polycaprolactone (PCL) nanofiber-coated plates to control polystyrene tissue culture plates using a proliferation assay. Ability of the plates to induce differentiation of cADMSCs into osteocytes, adipocytes, and neurons was evaluated based on expression of the osteocyte markers, COL1A1 and osterix; adipocyte markers PPAR2 and LPL; and neuronal marker nestin using RT-PCR. Proliferation results demonstrated that aligned-oriented PCL nanofiber-coated plates were more suitable substrate for cADMSCs after 7 days in culture compared to random-oriented PCL nanofiber-coated or control plates. Additionally, we demonstrated that both 3-D PCL nanofiber-coated plates were a better scaffold for cADMSCs differentiation into osteocytes compared to control plates. In conclusion, our results confirm that PCL nanofiber is a suitable tissue engineering material for use in regenerative medicine for canine patients in vivo. (c) 2018 Wiley Periodicals, Inc. J Biomed Mater Res Part A: 106A: 1780-1788, 2018.
引用
收藏
页码:1780 / 1788
页数:9
相关论文
共 50 条
  • [41] Safety test of canine adipose-derived stem cells
    Bogdanova, A.
    Berzins, U.
    Matise-Van Houtana, I.
    Petersone, I.
    Duritis, I.
    Skrastina, D.
    Muizniece, Z.
    Kozlovska, T.
    FEBS JOURNAL, 2012, 279 : 541 - 541
  • [42] A serum-free medium formulation efficiently supports isolation and propagation of canine adipose-derived mesenchymal stem/stromal cells
    Devireddy, Laxminarayana R.
    Myers, Michael
    Screven, Rudell
    Liu, Zhuoming
    Boxer, Lynne
    PLOS ONE, 2019, 14 (02):
  • [43] Canine Adipose-Derived Mesenchymal Stromal Cells Reduce Cell Viability and Migration of Metastatic Canine Oral Melanoma Cell Lines In Vitro
    Teng, Fwu Shing
    Lainetti, Patricia de Faria
    Franzoni, Mayara Simao
    Leis Filho, Antonio Fernando
    Gomes, Cristina de Oliveira Massoco Salles
    Laufer-Amorim, Renee
    Amorim, Rogerio Martins
    Fonseca-Alves, Carlos Eduardo
    VETERINARY SCIENCES, 2024, 11 (12)
  • [44] Xenotransplant of human adipose-derived mesenchymal stem cells
    Meyerrose, T
    DeUgarte, DA
    McNamara, G
    Hedrick, MH
    Nolta, JA
    EXPERIMENTAL HEMATOLOGY, 2002, 30 (06) : 142 - 142
  • [45] Adipose-derived mesenchymal stem cells and regenerative medicine
    Konno, Masamitsu
    Hamabe, Atsushi
    Hasegawa, Shinichiro
    Ogawa, Hisataka
    Fukusumi, Takahito
    Nishikawa, Shimpei
    Ohta, Katsuya
    Kano, Yoshihiro
    Ozaki, Miyuki
    Noguchi, Yuko
    Sakai, Daisuke
    Kudoh, Toshihiro
    Kawamoto, Koichi
    Eguchi, Hidetoshi
    Satoh, Taroh
    Tanemura, Masahiro
    Nagano, Hiroaki
    Doki, Yuichiro
    Mori, Masaki
    Ishii, Hideshi
    DEVELOPMENT GROWTH & DIFFERENTIATION, 2013, 55 (03) : 309 - 318
  • [46] Single-cell transcriptomic sequencing analyses of cell heterogeneity during osteogenesis of human adipose-derived mesenchymal stem cells
    Qu, Rongmei
    He, Kai
    Fan, Tingyu
    Yang, Yuchao
    Mai, Liyao
    Lian, Zhiwei
    Zhou, Zhitao
    Peng, Yan
    Khan, Asmat Ullah
    Sun, Bing
    Huang, Xiaolan
    Ouyang, Jun
    Pan, Xinghua
    Dai, Jingxing
    Huang, Wenhua
    STEM CELLS, 2021, 39 (11) : 1478 - 1488
  • [47] Priming Adipose-Derived Mesenchymal Stem Cells with Hyaluronan Alters Growth Kinetics and Increases Attachment to Articular Cartilage
    Succar, Peter
    Medynskyj, Michael
    Breen, Edmond J.
    Batterham, Tony
    Molloy, Mark P.
    Herbert, Benjamin R.
    STEM CELLS INTERNATIONAL, 2016, 2016
  • [48] Microfluidic Separation of Canine Adipose-Derived Mesenchymal Stromal Cells
    Liu, Zhuoming
    Screven, Rudell
    Yu, Debbie
    Boxer, Lynne
    Myers, Michael J.
    Han, Jongyoon
    Devireddy, Laxminarayana R.
    TISSUE ENGINEERING PART C-METHODS, 2021, 27 (08) : 445 - 461
  • [49] Differentiation of human adipose-derived mesenchymal stem cell into insulin-producing cells: an in vitro study
    Moshtagh, P. Rahnamay
    Emami, S. Hojati
    Sharifi, Ali M.
    JOURNAL OF PHYSIOLOGY AND BIOCHEMISTRY, 2013, 69 (03) : 451 - 458
  • [50] Differentiation of human adipose-derived mesenchymal stem cell into insulin-producing cells: an in vitro study
    P. Rahnamay Moshtagh
    S. Hojati Emami
    Ali M. Sharifi
    Journal of Physiology and Biochemistry, 2013, 69 : 451 - 458