INHIBITION BY ANANDAMIDE OF GAP-JUNCTIONS AND INTERCELLULAR CALCIUM SIGNALING IN STRIATAL ASTROCYTES

被引:310
作者
VENANCE, L
PIOMELLI, D
GLOWINSKI, J
GIAUME, C
机构
[1] COLL FRANCE,INSERM,U114,F-75231 PARIS 05,FRANCE
[2] INST NEUROSCI,LA JOLLA,CA 92037
关键词
D O I
10.1038/376590a0
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
ANANDAMIDE, an endogenous arachidonic acid derivative that is released from neurons and activates cannabinoid receptors(1), may act as a transcellular cannabimimetic messenger in the central nervous system(2-4). The biological actions of anandamide and the identity of its target cells are, however, still poorly documented(5). Here we show that anandamide is a potent inhibitor of gap-junction conductance and dye permeability in striatal astrocytes. This inhibitory effect is specific for anandamide as compared to coreleased congeners(4) or structural analogues, is sensitive to pertussis toxin and to protein-alkylating agents, and is neither mimicked by cannabinoid-receptor agonists nor prevented by a cannabinoid-receptor antagonist. Glutamate released from neurons evokes calcium waves in astrocytes(6) that propagate via gap junctions(7-9), and may, in turn, activate neurons distant from their initiation sites in astrocytes(10-12). We find that anandamide blocks the propagation of astrocyte calcium waves generated by either mechanical stimulation or local glutamate application. Thus, by regulating gap-junction permeability, anandamide may control intercellular communication in astrocytes and therefore neuron-glial interactions.
引用
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页码:590 / 594
页数:5
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共 28 条
  • [1] Devane W.A., Et al., Science, 258, pp. 1946-1949, (1992)
  • [2] Krusza K.K., Gross R.W., J. Biol. Chem., 269, pp. 14345-14348, (1994)
  • [3] Devane W.A., Axelrod J., Proc. Natn. Acad. Sei. U.S.A., 91, pp. 6698-6701, (1994)
  • [4] Di Marzo V., Et al., Nature, 372, pp. 686-691, (1994)
  • [5] Devane W.A., Trends Pharmacol. Sei., 15, pp. 40-41, (1994)
  • [6] Dani J.W., Chernjavsky A., Smith S.J., Neuron, 8, pp. 429-440, (1992)
  • [7] Charles A.C., Et al., J. Cell Biol., 118, pp. 195-201, (1992)
  • [8] Flnkbelner S.M., Neuron, 8, pp. 1101-1108, (1992)
  • [9] Enkvlst M.O.K., McCarthy K.D., J. Neurochem., 59, pp. 519-526, (1992)
  • [10] Nedergaard M., Science, 263, pp. 1768-1771, (1994)