Membrane channel gene expression in human costal and articular chondrocytes

被引:20
作者
Asmar, A. [1 ]
Barrett-Jolley, R. [2 ]
Werner, A. [3 ,4 ]
Kelly, R., Jr. [5 ,6 ]
Stacey, M. [1 ]
机构
[1] Old Dominion Univ, Frank Reidy Res Ctr Bioelect, Norfolk, VA USA
[2] Univ Liverpool, Dept Musculoskeletal Biol, Liverpool L69 3BX, Merseyside, England
[3] Childrens Hosp Kings Daughters, Dept Pathol, Eastern Virginia Med Sch, Norfolk, VA USA
[4] Childrens Hosp Kings Daughters, Norfolk, VA USA
[5] Childrens Hosp Kings Daughters, Dept Surg, Eastern Virginia Med Sch, Norfolk, VA USA
[6] Childrens Hosp Kings Daughters, Div Pediat Surg, Norfolk, VA USA
关键词
cartilage; chondrocytes; connexin; gap junctions; ion channels; pannexin; POTASSIUM CHANNEL; VOLUME REGULATION; DIFFERENT LAYERS; SODIUM-CHANNELS; CELL BEHAVIOR; ION CHANNELS; PANNEXIN; CONNEXIN; RECEPTORS; STRETCH;
D O I
10.1080/15476278.2016.1181238
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Chondrocytes are the uniquely resident cells found in all types of cartilage and key to their function is the ability to respond to mechanical loads with changes of metabolic activity. This mechanotransduction property is, in part, mediated through the activity of a range of expressed transmembrane channels; ion channels, gap junction proteins, and porins. Appropriate expression of ion channels has been shown essential for production of extracellular matrix and differential expression of transmembrane channels is correlated to musculoskeletal diseases such as osteoarthritis and Albers-Schonberg. In this study we analyzed the consistency of gene expression between channelomes of chondrocytes from human articular and costal (teenage and fetal origin) cartilages. Notably, we found 14 ion channel genes commonly expressed between articular and both types of costal cartilage chondrocytes. There were several other ion channel genes expressed only in articular (6 genes) or costal chondrocytes (5 genes). Significant differences in expression of BEST1 and KCNJ2 (Kir2.1) were observed between fetal and teenage costal cartilage. Interestingly, the large Ca2+ activated potassium channel (BK, or KCNMA1) was very highly expressed in all chondrocytes examined. Expression of the gap junction genes for Panx1, GJA1 (Cx43) and GJC1 (Cx45) was also observed in chondrocytes from all cartilage samples. Together, this data highlights similarities between chondrocyte membrane channel gene expressions in cells derived from different anatomical sites, and may imply that common electrophysiological signaling pathways underlie cellular control. The high expression of a range of mechanically and metabolically sensitive membrane channels suggest that chondrocyte mechanotransduction may be more complex than previously thought.
引用
收藏
页码:94 / 107
页数:14
相关论文
共 71 条
  • [1] Endogenous voltage gradients as mediators of cell-cell communication: strategies for investigating bioelectrical signals during pattern formation
    Adams, Dany S.
    Levin, Michael
    [J]. CELL AND TISSUE RESEARCH, 2013, 352 (01) : 95 - 122
  • [2] Distinct patterns of gene expression in the superficial, middle and deep zones of bovine articular cartilage
    Amanatullah, Derek F.
    Yamane, Shintaro
    Reddi, A. Hari
    [J]. JOURNAL OF TISSUE ENGINEERING AND REGENERATIVE MEDICINE, 2014, 8 (07) : 505 - 514
  • [3] Cross-platform comparison of SYBR® Green real-time PCR with TaqMan PCR, microarrays and other gene expression measurement technologies evaluated in the MicroArray Quality Control (MAQC) study
    Arikawa, Emi
    Sun, Yanyang
    Wang, Jie
    Zhou, Qiong
    Ning, Baitang
    Dial, Stacey L.
    Guo, Lei
    Yang, Jingping
    [J]. BMC GENOMICS, 2008, 9 (1)
  • [4] The mammalian pannexin family is homologous to the invertebrate innexin gap junction proteins
    Baranova, A
    Ivanova, DV
    Petrash, N
    Pestova, A
    Skoblov, M
    Kelmanson, I
    Shagin, D
    Nazarenko, S
    Geraymovych, E
    Litvin, O
    Tiunova, A
    Born, TL
    Usman, N
    Staroverov, D
    Lukyanov, S
    Panchin, Y
    [J]. GENOMICS, 2004, 83 (04) : 706 - 716
  • [5] Voltage-dependent conformational changes in connexin channels
    Bargiello, Thaddeus A.
    Tang, Qingxiu
    Oh, Seunghoon
    Kwon, Taekyung
    [J]. BIOCHIMICA ET BIOPHYSICA ACTA-BIOMEMBRANES, 2012, 1818 (08): : 1807 - 1822
  • [6] The emerging chondrocyte channelome
    Barrett-Jolley, Richard
    Lewis, Rebecca
    Fallman, Rebecca
    Mobasheri, Ali
    [J]. FRONTIERS IN PHYSIOLOGY, 2010, 1
  • [7] CONNEXIN MUTATIONS IN X-LINKED CHARCOT-MARIE-TOOTH DISEASE
    BERGOFFEN, J
    SCHERER, SS
    WANG, S
    SCOTT, MO
    BONE, LJ
    PAUL, DL
    CHEN, K
    LENSCH, MW
    CHANCE, PF
    FISCHBECK, KH
    [J]. SCIENCE, 1993, 262 (5142) : 2039 - 2042
  • [8] MEMBRANE-POTENTIALS AND SODIUM-CHANNELS - HYPOTHESES FOR GROWTH-REGULATION AND CANCER FORMATION BASED ON CHANGES IN SODIUM-CHANNELS AND GAP-JUNCTIONS
    BINGGELI, R
    WEINSTEIN, RC
    [J]. JOURNAL OF THEORETICAL BIOLOGY, 1986, 123 (04) : 377 - 401
  • [9] Pannexin 3 Is a Novel Target for Runx2, Expressed by Osteoblasts and Mature Growth Plate Chondrocytes
    Bond, Stephen R.
    Lau, Alice
    Penuela, Silvia
    Sampaio, Arthur V.
    Underhill, T. Michael
    Laird, Dale W.
    Naus, Christian C.
    [J]. JOURNAL OF BONE AND MINERAL RESEARCH, 2011, 26 (12) : 2911 - 2922
  • [10] Chondrogenic differentiation of bovine bone marrow mesenchymal stem cells in pellet cultural system
    Bosnakovski, D
    Mizuno, M
    Kim, G
    Ishiguro, T
    Okumura, M
    Iwanaga, T
    Kadosawa, T
    Fujinaga, T
    [J]. EXPERIMENTAL HEMATOLOGY, 2004, 32 (05) : 502 - 509