Role of GABAergic antagonism in the neuroprotective effects of bilobalide

被引:41
作者
Kiewert, Cornelia
Kumar, Vikas
Hildmann, Oksana
Rueda, Misty
Hartmann, Joachim
Naik, Runa S.
Klein, Jochen
机构
[1] Texas Tech Univ, Hlth Sci Ctr, Sch Pharm, Dept Pharmaceut Sci, Amarillo, TX 79106 USA
[2] Johannes Gutenberg Univ Mainz, Sch Med, Dept Pharmacol, D-55101 Mainz, Germany
关键词
bicuculline; edema formation; GABA(A) receptor; Ginkgo biloba; low-chloride condition; water content;
D O I
10.1016/j.brainres.2006.10.042
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Bilobalide, a constituent of Ginkgo biloba, has neuroprotective properties. Its mechanism of action is unknown but it was recently found to block GABA(A) receptors. The goal of this study was to test the potential role of a GABAergic mechanism for the neuroprotective activity of bilobalide. In rat hippocampal slices exposed to NMDA, release of choline indicates breakdown of membrane phospholipids. NMDA-induced choline release was almost completely blocked in the presence of bilobalide (10 KM) and under low-chloride conditions. Bicuculline (100 mu M), a competitive antagonist at GABAA receptors, reduced NMDA-induced choline release to a small extent (-23%). GABA (100 mu M) partially antagonized the inhibitory action of bilobalide. Exposure of hippocampal slices to NMDA also caused edema formation as measured by increases of tissue water content. NMDAinduced edema formation was suppressed by bilobalide and by low-chloride conditions. Bicuculline exerted partial protection (by 30%) while GABA reduced bilobalide's effect by about one third. To investigate bilobalide's interaction with GABA(A) receptors directly, we measured binding of [S-35] -TBPS to rat cortical membranes. TBPS binding was competitively inhibited by bilobalide in the low micromolar range (IC50=3.7 mu M). As a functional test, we determined (36)chloride flux in rat corticohippocampal synaptoneurosomes. GABA (100 mu M) significantly increased (36)chloride flux (+65%), and this increase was blocked by bilobalide, but with low potency (IC50: 39 mu M). We conclude that, while antagonism of GABA(A) receptors may contribute to bilobalide's neuroprotective effects, additional mechanisms must be postulated to fully explain bilobalide's actions. (c) 2006 Elsevier BY. All rights reserved.
引用
收藏
页码:70 / 78
页数:9
相关论文
共 47 条
[21]   Mixed antagonistic effects of bilobalide at ρ1 GABAC receptor [J].
Huang, SH ;
Duke, RK ;
Chebib, M ;
Sasaki, K ;
Wada, K ;
Johnston, GAR .
NEUROSCIENCE, 2006, 137 (02) :607-617
[22]   Bilobalide, a sesquiterpene trilactone from Ginkgo biloba, is an antagonist at recombinant α1 β2γ2L GABAA receptors [J].
Huang, SH ;
Duke, RK ;
Chebib, M ;
Sasaki, K ;
Wada, K ;
Johnston, GAR .
EUROPEAN JOURNAL OF PHARMACOLOGY, 2003, 464 (01) :1-8
[23]  
Inglefield JR, 1998, J NEUROCHEM, V71, P1396
[24]   Terpene trilactones from Ginkgo biloba are antagonists of cortical glycine and GABAA receptors [J].
Ivic, L ;
Sands, TTJ ;
Fishkin, N ;
Nakanishi, K ;
Kriegstein, AR ;
Stromgaard, K .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2003, 278 (49) :49279-49285
[25]   RELEASE OF GABA FROM RAT HIPPOCAMPAL SLICES - INVOLVEMENT OF QUISQUALATE/N-METHYL-D-ASPARTATE-GATED IONOPHORES AND EXTRACELLULAR MAGNESIUM [J].
JANAKY, R ;
SARANSAARI, P ;
OJA, SS .
NEUROSCIENCE, 1993, 53 (03) :779-785
[26]   Phospholipid breakdown and choline release under hypoxic conditions: Inhibition by bilobalide, a constituent of Ginkgo biloba [J].
Klein, J ;
Chatterjee, SS ;
Loffelholz, K .
BRAIN RESEARCH, 1997, 755 (02) :347-350
[27]  
Klein J, 2003, PHARMACOPSYCHIATRY, V36, pS78
[28]   Membrane breakdown in acute and chronic neurodegeneration: focus on choline-containing phospholipids [J].
Klein, J .
JOURNAL OF NEURAL TRANSMISSION, 2000, 107 (8-9) :1027-1063
[29]   NEUROPROTECTIVE EFFECTS OF GINKGO-BILOBA CONSTITUENTS [J].
KRIEGLSTEIN, J ;
AUSMEIER, F ;
ELABHAR, H ;
LIPPERT, K ;
WELSCH, M ;
RUPALLA, K ;
HENRICHNOACK, P .
EUROPEAN JOURNAL OF PHARMACEUTICAL SCIENCES, 1995, 3 (01) :39-48
[30]   Effects of ion channel blockade on the distribution of Na, K, Ca and other elements in oxygen-glucose deprived CA1 hippocampal neurons [J].
Lopachin, RM ;
Gaughan, CL ;
Lehning, EJ ;
Weber, ML ;
Taylor, CP .
NEUROSCIENCE, 2001, 103 (04) :971-983