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首页> 外文期刊>The Journal of general physiology >Pentobarbital Produces Activation and Block of α1β2γ2S GABAA Receptors in Rapidly Perfused Whole Cells and Membrane Patches: Divergent Results Can Be Explained by Pharmacokinetics
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Pentobarbital Produces Activation and Block of α1β2γ2S GABAA Receptors in Rapidly Perfused Whole Cells and Membrane Patches: Divergent Results Can Be Explained by Pharmacokinetics

机译:戊巴比妥在快速灌注的全细胞和膜斑中产生α1β2γ2SGABAA受体的激活和阻断:药代动力学可以解释不同的结果

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摘要

Millimolar concentrations of the barbiturate pentobarbital (PB) activate γ-aminobutyric acid (GABA) type A receptors (GABARs) and cause blockade reported by a paradoxical current increase or “tail” upon washout. To explore the mechanism of blockade, we investigated PB-triggered currents of recombinant α1β2γ2S GABARs in whole cells and outside-out membrane patches using rapid perfusion. Whole cell currents showed characteristic bell-shaped concentration dependence where high concentrations triggered tail currents with peak amplitudes similar to those during PB application. Tail current time courses could not be described by multi-exponential functions at high concentrations (≥3,000 μM). Deactivation time course decayed over seconds and was slowed by increasing PB concentration and application time. In contrast, macropatch tail currents manifested eightfold greater relative amplitude, were described by multi-exponential functions, and had millisecond rise times; deactivation occurred over fractions of seconds and was insensitive to PB concentration and application time. A parsimonious gating model was constructed that accounts for macropatch results (“patch” model). Lipophilic drug molecules migrate slowly through cells due to avid partitioning into lipophilic subcellular compartments. Inclusion of such a pharmacokinetic compartment into the patch model introduced a slow kinetic component in the extracellular exchange time course, thereby providing recapitulation of divergent whole cell results. GABA co-application potentiated PB blockade. Overall, the results indicate that block is produced by PB concentrations sixfold lower than for activation involving at least three inhibitory PB binding sites, suggest a role of blocked channels in GABA-triggered activity at therapeutic PB concentrations, and raise an important technical question regarding the effective rate of exchange during rapid perfusion of whole cells with PB.
机译:毫摩尔浓度的巴比妥酸盐戊巴比妥(PB)激活γ-氨基丁酸(GABA)A型受体(GABAR),并因冲刷时反常电流增加或“尾巴”而引起阻断作用。为了探索阻断的机制,我们使用快速灌注研究了PBα触发的重组α1β2γ2SGABAR在全细胞和由外而外的膜片中的电流。全细胞电流表现出特征性的钟形浓度依赖性,其中高浓度触发的尾电流具有与PB施用期间相似的峰值幅度。尾电流时程不能用高浓度(≥3,000μM)的多指数函数描述。失活时间进程在数秒内衰减,并通过增加PB浓度和施加时间而减慢。相比之下,大面片尾电流显示出相对振幅大八倍,由多指数函数描述,并且具有毫秒上升时间。灭活发生在几分之一秒内,并且对PB浓度和施用时间不敏感。构建了一个简化的选通模型,该模型考虑了宏补丁结果(“补丁”模型)。亲脂性药物分子由于强烈分配进入亲脂性亚细胞区室而在细胞中缓慢迁移。将这种药代动力学隔室包括在补丁模型中,在细胞外交换时间过程中引入了缓慢的动力学成分,从而提供了不同的全细胞结果的概括。 GABA共同应用增强了PB阻滞剂。总体而言,结果表明,PB产生的阻滞作用比激活作用涉及的至少三个抑制性PB结合位点的激活作用低六倍,这表明在治疗性PB浓度下,受阻通道在GABA触发的活性中的作用,并引发了有关用PB快速灌注整个细胞期间的有效交换率。

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