NEUROBIOLOGICAL MECHANISMS OF OPIOID TOLERANCE AND DEPENDENCE

被引:68
作者
COLLIN, E [1 ]
CESSELIN, F [1 ]
机构
[1] UNIV PARIS 06, INSERM, U288, 91 BLVD HOP, F-75634 PARIS 13, FRANCE
关键词
OPIOIDS; TOLERANCE; DEPENDENCE; RECEPTORS;
D O I
10.1097/00002826-199112000-00001
中图分类号
R74 [神经病学与精神病学];
学科分类号
摘要
The multiplicity of opioid receptors (mu, partial derivative, kappa) and the limited knowledge of their coupling mechanisms explain why cellular and biochemical changes underlying opioid tolerance/dependence remain poorly understood. Following chronic exposure to opioids, both down- and up-regulation of opioid receptors can occur, depending on the receptor type and/or the central region examined. As these changes generally appear after the tolerance is installed, they are very likely not responsible for it. Instead, opioid tolerance seems to be associated with some uncoupling (probably functional rather than physical) of the opioid receptors from G proteins normally associated with them, therefore resulting in a loss of the capacity of these proteins to exchange GDP for GTP. However, considerable variations might exist in the mechanisms underlying tolerance from one opioid receptor type to another. With regard to dependence, an increase in adenylate cyclase activity, and therefore of cyclic AMP levels and certain protein kinase activities, have been claimed to be responsible for this phenomenon in some cell types. As highly selective opioid agonists and antagonists are now available, experiments with such compounds are expected to yield more informative data on the consequences of the chronic stimulation of a given receptor type. This should contribute to a better understanding of the biochemical and cellular events really responsible for the development of morphine tolerance and dependence.
引用
收藏
页码:465 / 488
页数:24
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