DIFFERENTIAL REGULATION OF THE LEVELS OF 3 GAP JUNCTION MESSENGER-RNAS IN XENOPUS EMBRYOS

被引:116
作者
GIMLICH, RL [1 ]
KUMAR, NM [1 ]
GILULA, NB [1 ]
机构
[1] OREGON STATE UNIV,DEPT ZOOL,CORVALLIS,OR 97331
关键词
D O I
10.1083/jcb.110.3.597
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Xenopus mRNAs that potentially encode gap junction proteins in the oocyte and early embryo have been identified by low-stringency screening of cDNA libraries with cloned mammalian gap junction cDNAs. The levels of these mRNAs show strikingly different temporal regulation and tissue distribution. Using a nomenclature designed to stress important structural similarities of distinct gap junction gene products, the deduced polypeptides have been designated the Xenopus α1 and α2 gap junction proteins. The α2 gap junction mRNA is a maternal transcript that disappears by the late gastrula stage. It is not detected in any organ of the adult except the ovary, and resides primarily, if not exclusively, in the oocytes and early embryos. The α1 gap junction mRNA appears during organogenesis, and is detected in RNA from a wide variety of organs. It is also found in full-grown oocytes, but is rapidly degraded upon oocyte maturation, both in vivo and in vitro. The α1 and α2 mRNAs encode proteins with different degrees of amino acid sequence similarity to the predominant gap junction subunit of the mammalian heart (connexin 43). Together with our earlier report of a mid-embryonic (β1) gap junction mRNA, the results suggest that intercellular communication during oocyte growth and postfertilization development is a complex phenomenon involving the coordinated regulation of several genes.
引用
收藏
页码:597 / 605
页数:9
相关论文
共 45 条
[21]   TOPOLOGICAL DISTRIBUTION OF 2 CONNEXIN32 ANTIGENIC SITES IN INTACT AND SPLIT RODENT HEPATOCYTE GAP-JUNCTIONS [J].
GOODENOUGH, DA ;
PAUL, DL ;
JESAITIS, L .
JOURNAL OF CELL BIOLOGY, 1988, 107 (05) :1817-1824
[22]  
GUTHRIE S, 1988, DEVELOPMENT, V103, P769
[23]   PATTERNS OF JUNCTIONAL COMMUNICATION IN THE EARLY AMPHIBIAN EMBRYO [J].
GUTHRIE, SC .
NATURE, 1984, 311 (5982) :149-151
[24]   GAP JUNCTIONAL COMMUNICATION AND DEVELOPMENT [J].
GUTHRIE, SC ;
GILULA, NB .
TRENDS IN NEUROSCIENCES, 1989, 12 (01) :12-16
[25]  
ITO S, 1980, DEV GROWTH DIFFER, V22, P247
[26]   CLONING AND CHARACTERIZATION OF HUMAN AND RAT-LIVER CDNAS CODING FOR A GAP JUNCTION PROTEIN [J].
KUMAR, NM ;
GILULA, NB .
JOURNAL OF CELL BIOLOGY, 1986, 103 (03) :767-776
[27]   A DRAMATIC LOSS OF CUMULUS CELL GAP-JUNCTIONS IS CORRELATED WITH GERMINAL VESICLE BREAKDOWN IN RAT OOCYTES [J].
LARSEN, WJ ;
WERT, SE ;
BRUNNER, GD .
DEVELOPMENTAL BIOLOGY, 1986, 113 (02) :517-521
[28]   GAP JUNCTIONAL COMMUNICATION AND COMPACTION DURING PREIMPLANTATION STAGES OF MOUSE DEVELOPMENT [J].
LEE, S ;
GILULA, NB ;
WARNER, AE .
CELL, 1987, 51 (05) :851-860
[29]   COMMUNICATION BETWEEN CELLS OF DIFFERENT TYPE [J].
MICHALKE, W ;
LOEWENSTEIN, WR .
NATURE, 1971, 232 (5306) :121-+
[30]   TOPOLOGY OF THE 32-KD LIVER GAP JUNCTION PROTEIN DETERMINED BY SITE-DIRECTED ANTIBODY LOCALIZATIONS [J].
MILKS, LC ;
KUMAR, NM ;
HOUGHTEN, R ;
UNWIN, N ;
GILULA, NB .
EMBO JOURNAL, 1988, 7 (10) :2967-2975