The endothelin-1 receptor-mediated pathway is not involved in the endothelin-1-induced defenestration of liver sinusoidal endothelial cells

被引:14
|
作者
Yokomori, Hiroaki
Yoshimura, Kazunori
Ohshima, Susumu
Nagai, Toshihiro
Fujimaki, Kayo
Nomura, Masahiko
Oda, Masaya
Hibi, Toshifumi
机构
[1] Kitasato Med Ctr Hosp, Dept Internal Med, Kitamotoshi, Saitama 3648501, Japan
[2] Keio Univ, Sch Med, Dept Internal Med, Tokyo 1600016, Japan
[3] Keio Univ, Sch Med, Electron Microscopy Lab, Tokyo 1600016, Japan
[4] Int Univ Hlth & Welf, Organized Ctr Clin Med, Tokyo 1070052, Japan
关键词
actin; endothelin-1; sinusoidal endothelial cell; sinusoidal endothelial fenestrae; Rho;
D O I
10.1111/j.1478-3231.2006.01365.x
中图分类号
R57 [消化系及腹部疾病];
学科分类号
摘要
Background/Aims: We previously reported that endothelin (ET)-1 may be involved in the contraction of hepatic sinusoidal endothelial fenestrae (SEF). Rho has emerged as an important regulator of the actin cytoskeleton and consequently cell morphology. To clarify the role of ET receptors [endothelin A receptor (ETAR) and endothelin B receptor (ETBR)] in ET-1-induced defenestration, we studied the size of hepatic SEF under various experimental conditions. Methods: Liver sinusoidal endothelial cells (LSECs) isolated from rat livers by collagenase perfusion were cultured and divided into four groups: control, ET-1 (10(-6)-10(-10) M)-treated, ET-1+selective ETAR antagonist (BQ610)-treated and ET-1+ETBR antagonist (BQ788)-treated groups. SEF morphology was observed by scanning electron microscopy. Protein expressions of ETAR and ETBR, Rho A and phosphorylated myosin light-chain kinase were analyzed by Western blotting. F-actin stress fiber formation was observed by confocal microscopy. Active Rho was measured by Ren's modification. Intracellular free Ca2+ concentration ([Ca2+](i)) was measured by fluorescence digital imaging using fura-2 AM by Aqua cosmos. Results: ET-1 induced a reduction in the number and size of SEF. ETAR antagonist pretreatment inhibited defenestration induced by low ET-1 concentrations (10(-8)-10(-10) M), whereas ETBR antagonist pretreatment did not block defenestration at low to high ET-1 concentrations (10(-6)-10(-10) M). F-actin stress fibers, Rho A levels and phosphorylated myosin light-chain kinase levels remained the same in various treatments. Active Rho was not detected in control and various treatments. ET-1 did not increase [Ca2+](i). Western blot showed prominent ETBR but scarce ETAR protein expression in LSECs. Conclusions: The present findings demonstrated that ETBR- and ETAR-induced contractile mechanisms are not involved in ET-1-induced defenestration, and that Rho is also not activated. Therefore, ET-1 induces hepatic defenestration by mechanisms other than receptor-mediated contraction.
引用
收藏
页码:1268 / 1276
页数:9
相关论文
共 50 条
  • [31] Signal transduction pathways involved in endothelin-1-induced brain endothelial cell migration
    Milan, J
    Hofman, F
    Charalambous, C
    Zidovetzki, R
    Chen, TC
    NEURO-ONCOLOGY, 2004, 6 (04) : 311 - 311
  • [32] Endothelin-1 mediated endothelin B receptor upregulation contributes to apoptosis of retinal ganglion cells
    Krishnamoorthy, RR
    Dauphin, R
    Prasanna, G
    Ferrell, T
    Narayan, S
    Hulet, C
    Yorio, T
    INVESTIGATIVE OPHTHALMOLOGY & VISUAL SCIENCE, 2003, 44 : U143 - U143
  • [33] Receptor-mediated vascular and metabolic actions of endothelin-1 in canine small intestine
    King-VanVlack, CE
    Mewburn, JD
    Chapler, CK
    FASEB JOURNAL, 1998, 12 (04): : A6 - A6
  • [34] Endothelin B receptor-mediated vasoconstriction induced by endothelin A receptor antagonist
    Zhang, Y
    Oliver, JR
    Horowitz, JD
    CARDIOVASCULAR RESEARCH, 1998, 39 (03) : 665 - 673
  • [35] Ca2+ signal is involved in endothelin-1-induced internalization of endothelin type A receptor expressed in Chinese hamster ovary cells
    Horinouchi, Takahiro
    Karki, Sarita
    Terada, Koji
    Mazaki, Yuichi
    Miwa, Soichi
    JOURNAL OF PHARMACOLOGICAL SCIENCES, 2019, 140 (01) : 102 - 105
  • [36] Receptor-mediated vascular and metabolic actions of endothelin-1 in canine small intestine
    King-VanVlack, CE
    Mewburn, JD
    Chapler, CK
    AMERICAN JOURNAL OF PHYSIOLOGY-GASTROINTESTINAL AND LIVER PHYSIOLOGY, 1999, 276 (05): : G1131 - G1136
  • [37] Downregulation of endothelin-1 by farnesoid X receptor in vascular endothelial cells
    He, FT
    Li, J
    Mu, Y
    Kuruba, R
    Ma, Z
    Wilson, A
    Alber, S
    Jiang, Y
    Stevens, T
    Watkins, S
    Pitt, B
    Xie, W
    Li, S
    CIRCULATION RESEARCH, 2006, 98 (02) : 192 - 199
  • [38] Endothelin-1-induced endothelial microvesicles impair endothelial cell function
    Brewster, L. Madden
    Garcia, Vinicius P.
    Levy, Ma'ayan, V
    Stockelman, Kelly A.
    Goulding, Anabel
    DeSouza, Noah M.
    Greiner, Jared J.
    Hijmans, Jamie G.
    DeSouza, Christopher A.
    JOURNAL OF APPLIED PHYSIOLOGY, 2020, 128 (06) : 1497 - 1505
  • [39] Expression of endothelin-1 and endothelin-1 receptor A in canine mammary tumours
    Restucci, B.
    Martano, M.
    Maiolino, P.
    RESEARCH IN VETERINARY SCIENCE, 2015, 100 : 182 - 188
  • [40] EFFECTS OF PHOSPHORAMIDON ON ENDOTHELIN-1 AND BIG ENDOTHELIN-1 PRODUCTION IN HUMAN AORTIC ENDOTHELIAL-CELLS
    MATSUMURA, Y
    TSUKAHARA, Y
    KOJIMA, T
    MURATA, S
    MURAKAMI, A
    TAKADA, K
    TAKAOKA, M
    MORIMOTO, S
    BIOLOGICAL & PHARMACEUTICAL BULLETIN, 1995, 18 (03) : 401 - 406