Construction of Sox9 Gene Eukaryotic Expression Vector and Its Inductive Effects on Directed Differentiation of Bone Marrow Stromal Cells into Precartilaginous Stem Cells in Rats

被引:0
作者
胡伟华 [1 ]
郭风劲 [1 ]
李锋 [1 ]
黄晖 [1 ]
张伟凯 [1 ]
陈安民 [1 ]
机构
[1] Department of Orthopedics, Tongji Hospital, Tongji Medical College, Huazhong University of Science and Technology
关键词
precartilaginous stem cells; Sox9; bone marrow-derived stromal cells; transfection;
D O I
暂无
中图分类号
Q78 [基因工程(遗传工程)];
学科分类号
071007 ; 0836 ; 090102 ;
摘要
Sox9 gene was cloned from immortalized precartilaginous stem cells and its eukaryotic expression vector constructed in order to explore the possibility of bone marrow-derived stromal cells differentiation into precartilaginous stem cells induced by Sox9. A full-length fragment of Sox9 was obtained by RT-PCR, inserted into pGEM-T Easy clone vector, and ligated with pEGFP-IRES2 expression vector by double digestion after sequencing. The compound plasmid was transfected into born marrow-derived stromal cells by Lipofectamine 2000, and the transfection efficacy and the ex-pression of Sox9 and FGFR-3 were observed. Flow cytometry was used to identify the cell phenotype, and MTT was employed to assay proliferative viability of cells. Sequencing, restrictive endonuclease identification and RT-PCR confirmed that the expansion of Sox9 and construction of Sox9 expression vector were successful. After transfection of the recombinant vector into bone marrow-derived stro-mal cells, the expression of Sox9 and FGFR-3 was detected, and proliferative viability was not different from that of precartilaginous stem cells. It was concluded that Sox9 gene eukaryotic expression vector was successfully constructed, and the transfected bone marrow-derived stromal cells differen-tiated into the precartilaginous stem cells.
引用
收藏
页码:291 / 295
页数:5
相关论文
共 9 条
  • [1] Blocking Ihh signaling pathway inhibits the proliferation and promotes the apoptosis of PSCs[J] . Kai Xu,Fengjing Guo,Shuwei Zhang,Cheng Liu,Feixiong Wang,Zhiguo Zhou,Anmin Chen.Journal of Huazhong University of Science and Technology[Medical Sciences] . 2009 (1)
  • [2] Immunological purification of rat precartilaginous stem cells and construction of the immortalized cell strain
    Zhang, Shuwei
    Chen, Anmin
    Hu, Weihua
    Li, Minghui
    Liao, Hui
    Zhu, Wentao
    Song, Dengxin
    Guo, Fengjing
    [J]. ARCHIVES OF ORTHOPAEDIC AND TRAUMA SURGERY, 2008, 128 (11) : 1339 - 1344
  • [3] An in situ hybridization study of Runx2, Osterix, and Sox9 in the anlagen of mouse mandibular condylar cartilage in the early stages of embryogenesis[J] . ShunichiShibata,TamakiYokohama‐Tamaki.Journal of Anatomy . 2008 (3)
  • [4] A distinct cohort of progenitor cells participates in synovial Joint and articular cartilage formation during mouse limb skeletogenesis
    Koyama, Eiki
    Shibukawa, Yoshihiro
    Nagayama, Motohiko
    Sugito, Hiroki
    Young, Blanche
    Yuasa, Takahito
    Okabe, Takahiro
    Ochiai, Takanaga
    Kamiya, Nobuhiko
    Rountree, Ryan B.
    Kingsley, David M.
    Iwamoto, Masahiro
    Enomoto-Iwamoto, Motomi
    Pacifici, Maurizio
    [J]. DEVELOPMENTAL BIOLOGY, 2008, 316 (01) : 62 - 73
  • [5] Osteoblastic cells: Differentiation and trans-differentiation[J] . Moustapha Kassem,Basem M. Abdallah,Hamid Saeed.Archives of Biochemistry and Biophysics . 2008 (2)
  • [6] SOX gene expression in human osteoarthritic cartilage
    Haag, Jochen
    Gebhard, Pia M.
    Aigner, Thomas
    [J]. PATHOBIOLOGY, 2008, 75 (03) : 195 - 199
  • [7] Distinct roles of Sox5, Sox6, and Sox9 in different stages of chondrogenic differentiation[J] . Toshiyuki Ikeda,Hiroshi Kawaguchi,Satoru Kamekura,Naoshi Ogata,Yoshiyuki Mori,Kozo Nakamura,Shiro Ikegawa,Ung-il Chung.Journal of Bone and Mineral Metabolism . 2005 (5)
  • [8] The expression of fibroblast growth factor receptor-3 in synovial osteochondromatosis of the temporomandibular joint
    Tojyo, I
    Yamaguti, A
    Ozaki, H
    Yoshida, H
    Fujita, S
    [J]. ARCHIVES OF ORAL BIOLOGY, 2004, 49 (07) : 591 - 594
  • [9] Human trabecular bone-derived osteoblasts support human osteoclast formation in vitro in a defined, serum-free medium. GJ Atkins,P Kostakis,KJ Welldon,C Vincent,DM Findlay,AC Zannettino. Journal of Cellular Physiology . 2005