Gap junctions assemble in the presence of cytoskeletal inhibitors, but enhanced assembly requires microtubules

被引:65
作者
Johnson, RG [1 ]
Meyer, RA
Li, XR
Preus, DM
Tan, L
Grunenwald, H
Paulson, AF
Laird, DW
Sheridan, JD
机构
[1] Univ Minnesota, Dept Genet Cell Biol & Dev, St Paul, MN 55108 USA
[2] Univ Western Ontario, Dept Anat & Cell Biol, London, ON N6A 5C1, Canada
关键词
gap junction; cell communication; actin filament; microtubule; freeze-fracture; dye injection; connexin43;
D O I
10.1006/excr.2002.5480
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
The role of cytoskeletal elements in gap junction (GJ) assembly has been studied using Novikoff hepatoma cells treated with cytochalasin B (CB) to disrupt actin filaments or with colchicine or nocodazole to disrupt microtubules. After 60 min of cell reaggregation, freeze-fracture was used to evaluate quantitatively the "initiation," "maturation," and "growth" phases of GJ assembly. The development of functional permeability to fluorescent dyes was also analyzed. The only effects of CB on the structure or permeability of the developing junctions involved an elongation of GJ aggregates and a small decrease in formation plaque areas. Colchicine (but not the inactive form, lumicolchicine) prevented the enhancement of GJ growth by cholesterol, but its effect on basal growth was equivocal. Nocodazole inhibited the growth of GJ, even under basal conditions, without an effect on initiation. Nocodazole also blocked the forskolin-enhanced increase in the growth of GJs and, in living MDCK cells, reduced the movement of transport intermediates containing green fluorescent protein-tagged connexin43. Thus, neither actin filaments nor microtubules appear to restrict GJ assembly by anchoring intramembrane GJ proteins, nor are they absolutely required for functional GJs to form. However, microtubules are necessary for enhanced GJ growth and likely for facilitating connexin trafficking under basal conditions. (C) 2002 Elsevier Science (USA).
引用
收藏
页码:67 / 80
页数:14
相关论文
共 61 条
[1]   The structure and regulation of tight junctions [J].
Anderson, James Melvin ;
Balda, Maria S. ;
Fanning, Alan S. .
CURRENT OPINION IN CELL BIOLOGY, 1993, 5 (05) :772-778
[2]   RAPID AND REVERSIBLE REDUCTION OF JUNCTIONAL PERMEABILITY IN CELLS INFECTED WITH A TEMPERATURE-SENSITIVE MUTANT OF AVIAN-SARCOMA VIRUS [J].
ATKINSON, MM ;
MENKO, AS ;
JOHNSON, RG ;
SHEPPARD, JR ;
SHERIDAN, JD .
JOURNAL OF CELL BIOLOGY, 1981, 91 (02) :573-578
[3]  
ATKINSON MM, 1995, J CELL SCI, V108, P3079
[4]   The cellular Internet: On-line with connexins [J].
Bruzzone, R ;
White, TW ;
Goodenough, DA .
BIOESSAYS, 1996, 18 (09) :709-718
[5]   Clustering of connexin 43-enhanced green fluorescent protein gap junction channels and functional coupling in living cells [J].
Bukauskas, FF ;
Jordan, K ;
Bukauskiene, A ;
Bennett, MVL ;
Lampe, PD ;
Laird, DW ;
Verselis, VK .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2000, 97 (06) :2556-2561
[6]   MUTATIONAL ANALYSIS OF GAP JUNCTION FORMATION [J].
DAHL, G ;
WERNER, R ;
LEVINE, E ;
RABADANDIEHL, C .
BIOPHYSICAL JOURNAL, 1992, 62 (01) :172-182
[7]   Assembly of heteromeric connexons in guinea-pig liver en route to the Golgi apparatus, plasma membrane and gap junctions [J].
Diez, JA ;
Ahmad, S ;
Evans, WH .
EUROPEAN JOURNAL OF BIOCHEMISTRY, 1999, 262 (01) :142-148
[8]   Loss of gap junction plaques and inhibition of intercellular communication in ilimaquinone-treated BICR-M1R(k) and NRK cells [J].
Feldman, PA ;
Kim, J ;
Laird, DW .
JOURNAL OF MEMBRANE BIOLOGY, 1997, 155 (03) :275-287
[9]   Intracellular trafficking pathways in the assembly of connexins into gap junctions [J].
George, CH ;
Kendall, JM ;
Evans, WH .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1999, 274 (13) :8678-8685
[10]   Gap junction protein connexin-43 interacts directly with microtubules [J].
Giepmans, BNG ;
Verlaan, I ;
Hengeveld, T ;
Janssen, H ;
Calafat, J ;
Falk, MM ;
Moolenaar, WH .
CURRENT BIOLOGY, 2001, 11 (17) :1364-1368