How do general anaesthetics work?

被引:84
作者
Antkowiak, B [1 ]
机构
[1] Max Planck Inst Biol Cybernet, D-72076 Tubingen, Germany
关键词
D O I
10.1007/s001140100230
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
Almost a century ago, Meyer and Overton discovered a linear relationship between the potency of anaesthetic agents to induce general anaesthesia and their ability to accumulate in olive oil. Similar correlations between anaesthetic potency and lipid solubility were later reported from investigations on various experimental model systems. However, exceptions to the Meyer-Overton correlation exist in all these systems, indicating that lipid solubility is an important, but not the sole determinant of anaesthetic action. In the mammalian central nervous system, most general anaesthetics act at multiple molecular sites. It seems likely that not all of these effects are involved in anaesthesia. GABA(A)- and NMDA-receptor/ion channels have already been identified as relevant targets. However, further mechanisms, such as a blockade of Na+ channels and an activation of K+ channels, also come into play. A comparison of different anaesthetics seems to show that each compound has its own spectrum of molecular actions and thus shows specific, fingerprint-like effects on different levels of neuronal activity. This may explain why there is no known compound that specifically antagonises general anaesthesia. General anaesthesia is a multidimensional phenomenon. Unconsciousness, amnesia, analgesia, lass of sensory processing and the depression of spinal motor reflexes are important components. It was not realised until very recently that different molecular mechanisms might underlie these different components. These findings challenge traditional views, such as the assumption that one anaesthetic can be freely replaced by another.
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页码:201 / 213
页数:13
相关论文
共 118 条
[1]   ALPHA2-ADRENERGIC AGENTS IN ANESTHESIA [J].
AANTAA, R ;
SCHEININ, M .
ACTA ANAESTHESIOLOGICA SCANDINAVICA, 1993, 37 (05) :433-448
[2]   SPECULATIONS ON THE MOLECULAR NATURE OF ANESTHESIA [J].
ALBRECHT, RF ;
MILETICH, DJ .
GENERAL PHARMACOLOGY, 1988, 19 (03) :339-346
[3]   Positron emission tomography study of regional cerebral metabolism in humans during isoflurane anesthesia [J].
Alkire, MT ;
Haier, RJ ;
Shah, NK ;
Anderson, CT .
ANESTHESIOLOGY, 1997, 86 (03) :549-557
[4]   Functional brain imaging during anesthesia in humans - Effects of halothane on global and regional cerebral glucose metabolism [J].
Alkire, MT ;
Pomfrett, CJD ;
Haier, RJ ;
Gianzero, MV ;
Chan, CM ;
Jacobsen, BP ;
Fallon, JH .
ANESTHESIOLOGY, 1999, 90 (03) :701-709
[5]  
ALLADA R, 1993, ANESTH ANALG, V77, P19
[6]  
Amin J, 1999, MOL PHARMACOL, V55, P411
[7]   Effects of small concentrations of volatile anesthetics on action potential firing of neocortical neurons in vitro [J].
Antkowiak, B ;
Helfrich-Förster, C .
ANESTHESIOLOGY, 1998, 88 (06) :1592-1605
[8]   Different actions of general anesthetics on the firing patterns of neocortical neurons mediated by the GABAA receptor [J].
Antkowiak, B .
ANESTHESIOLOGY, 1999, 91 (02) :500-511
[9]   Cellular mechanisms of gamma rhythms in rat neocortical brain slices probed by the volatile anaesthetic isoflurane [J].
Antkowiak, B ;
Hentschke, H .
NEUROSCIENCE LETTERS, 1997, 231 (02) :87-90
[10]   Neural mechanisms of anaesthesia [J].
Antkowiak, B ;
Kirschfeld, K .
ANASTHESIOLOGIE INTENSIVMEDIZIN NOTFALLMEDIZIN SCHMERZTHERAPIE, 2000, 35 (12) :731-743