Placental and membrane aquaporin water channels: Correlation with amniotic fluid volume and composition

被引:52
作者
Beall, M. H.
Wang, S.
Yang, B.
Chaudhri, N.
Amidi, F.
Ross, M. G.
机构
[1] Harbor UCLA Med Ctr, Dept Obstet & Gynecol, Torrance, CA 90509 USA
[2] Harbor UCLA, Biomed Res Inst, Torrance, CA USA
[3] Univ Calif San Francisco, Dept Med, San Francisco, CA 94143 USA
关键词
amniotic fluid; aquaporins; mouse;
D O I
10.1016/j.placenta.2006.06.005
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Objectives: To assess the role of aquaporins (AQPs) in the regulation of amniotic fluid (AF) volume, we determined AF volume and composition and placental and fetal membrane AQP expression throughout the second half of murine gestation. Methods: Pregnant CD1 mice were sacrificed at e10-19 and AF volume and composition determined. Placenta and fetal membranes were screened for AQP gene expression. AQP gene expression was quantified by real-time RT PCR and protein location determined by immunohistochemistry. Changes in AF volume were correlated with AQP expression. Results: Both membranes and placenta demonstrated expression of AQP1, -3, -8 and -9. Advancing gestation was associated with increased AF volume from e10 to e16, with a marked decrease in AF volume from e16 to e19. By immunohistochemistry, AQP1 was localized to placental vessels and AQP3 to trophoblast. AF volume was negatively correlated with fetal membrane AQP1 and placental AQP1 and AQP9 expression, and positively correlated with placental AQP3 expression. Conclusion: Changes in AQPs with advancing gestation; and their correlation with AF volume, suggest a role in mediating placental and membrane water flow and ultimately AF volume. AQP1 appears to regulate fetal membrane water flow, and AQP3 is a likely candidate for the regulation of placental water flow. (c) 2006 Elsevier Ltd. All rights reserved.
引用
收藏
页码:421 / 428
页数:8
相关论文
共 32 条
[1]   Amniotic fluid volume and composition in mouse pregnancy [J].
Cheung, CY ;
Brace, RA .
JOURNAL OF THE SOCIETY FOR GYNECOLOGIC INVESTIGATION, 2005, 12 (08) :558-562
[2]   Developmental dynamics of the definitive mouse placenta assessed by stereology [J].
Coan, PM ;
Ferguson-Smith, AC ;
Burton, GJ .
BIOLOGY OF REPRODUCTION, 2004, 70 (06) :1806-1813
[3]   Water channel proteins AQP3 and AQP9 are present in syncytiotrophoblast of human term placenta [J].
Damiano, A ;
Zotta, E ;
Goldstein, J ;
Reisin, I ;
Ibarra, C .
PLACENTA, 2001, 22 (8-9) :776-781
[4]  
DAMIANO AE, 2006, PLACENTA
[5]   EXTRACELLULAR VOLUME AND BLOOD-VOLUME IN CHRONICALLY CATHETERIZED FETAL SHEEP [J].
GIBSON, KJ ;
LUMBERS, ER .
JOURNAL OF PHYSIOLOGY-LONDON, 1995, 485 (03) :835-844
[6]  
GILBERT WM, 1989, OBSTET GYNECOL, V74, P748
[7]   EXTRARENAL TISSUE DISTRIBUTION OF CHIP28 WATER CHANNELS BY IN-SITU HYBRIDIZATION AND ANTIBODY STAINING [J].
HASEGAWA, H ;
LIAN, SC ;
FINKBEINER, WE ;
VERKMAN, AS .
AMERICAN JOURNAL OF PHYSIOLOGY, 1994, 266 (04) :C893-C903
[8]   Gestational development of water and non-electrolyte permeability of human syncytiotrophoblast plasma membranes [J].
Jansson, T ;
Powell, TL ;
Illsley, NP .
PLACENTA, 1999, 20 (2-3) :155-160
[9]   Ontogeny of aquaporins 1 and 3 in ovine placenta and fetal membranes [J].
Johnston, H ;
Koukoulas, I ;
Jeyaseelan, K ;
Armugam, A ;
Earnest, L ;
Baird, R ;
Dawson, N ;
Ferraro, T ;
Wintour, EM .
PLACENTA, 2000, 21 (01) :88-99
[10]   A comparative study of gallstones from children and adults using FTIR spectroscopy and fluorescence microscopy [J].
Kleiner O. ;
Ramesh J. ;
Huleihel M. ;
Cohen B. ;
Kantarovich K. ;
Levi C. ;
Polyak B. ;
Marks R.S. ;
Mordehai J. ;
Cohen Z. ;
Mordechai S. .
BMC Gastroenterology, 2 (1)