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γ-氨基丁酸在发育中大鼠下丘脑神经元中的兴奋作用。

Excitatory actions of GABA in developing rat hypothalamic neurones.

作者信息

Chen G, Trombley P Q, van den Pol A N

机构信息

Section of Neurosurgery, Yale University School of Medicine, New Haven, CT 06520, USA.

出版信息

J Physiol. 1996 Jul 15;494 ( Pt 2)(Pt 2):451-64. doi: 10.1113/jphysiol.1996.sp021505.

DOI:10.1113/jphysiol.1996.sp021505
PMID:8842004
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1160647/
Abstract
  1. Gramicidin-perforated patch clamp recording was employed to study GABA-mediated responses in rat hypothalamic neurones (n = 102) with an intracellular Cl- concentration unaltered by the pipette solution. 2. In young cultures after 1-7 days in vitro (DIV), GABA induced depolarizing membrane potentials (+16.5 +/- 1.3 mV) that often surpassed the threshold for the firing of action potentials (-42 +/- 1 mV) and resulted in an increase in neuronal activity. The depolarizing responses to GABA in young cultures were dose dependent. The concentration of GABA necessary to evoke the half-maximal depolarization (EC50) was 2.8 microM. In contrast, GABA induced hyperpolarizing membrane potentials (-12.0 +/- 1.4 mV) and a decrease in neuronal activity in older neurones (20-33 DIV). Both the depolarization and the hyperpolarization induced by GABA were blocked by bicuculline, indicating a mediation by GABAA receptors. 3. The reversal potentials of the GABA-evoked currents were between -40 to -50 mV during the first week of culture, and shifted to below -70 mV after 3 weeks of culture. In parallel, neurones that were dissociated from older animals (postnatal day 5) had a more negative reversal potential for the GABA-evoked currents than cells from younger animals (embryonic day 15), suggesting that the negative shift of the reversal potential occurs both in vitro and in vivo. Our data suggest that the mechanism for GABA-induced depolarization is the depolarized Cl- reversal potential found in young but not older neurones. 4. Consistent with the depolarizing response to exogenous application of GABA, some spontaneous depolarizing postsynaptic potentials in young cultures were insensitive to AP5-CNQX, but were eliminated by bicuculline, indicating that synaptically released GABA mediated excitatory synaptic transmission in early development. 5. By combining a rapid computer-controlled delivery of GABA with subthreshold positive current injections into recorded neurones, we found in young cultures that the GABA-evoked depolarization could directly trigger action potentials, facilitate some depolarizing input to fire action potentials, and shunt other depolarizing input. Whether the GABA-induced depolarization is excitatory or inhibitory would be determined by the reversal potential of the GABA-evoked current, and the temporal relationship between GABA-evoked depolarizations and other excitatory events. 6. We conclude that the reversal potential of the GABA-evoked current shifts negatively from depolarizing to hyperpolarizing in developing hypothalamus. Consequently, GABA neurotransmission may serve both excitatory and inhibitory roles during early development.
摘要
  1. 采用短杆菌肽穿孔膜片钳记录法,研究细胞内氯离子浓度不受移液管溶液影响的大鼠下丘脑神经元(n = 102)中γ-氨基丁酸(GABA)介导的反应。2. 在体外培养1 - 7天(DIV)的年轻培养物中,GABA诱导膜电位去极化(+16.5±1.3 mV),该电位常超过动作电位发放阈值(-42±1 mV),并导致神经元活动增加。年轻培养物中对GABA的去极化反应呈剂量依赖性。引起半数最大去极化(EC50)所需的GABA浓度为2.8微摩尔。相比之下,GABA在较老的神经元(20 - 33 DIV)中诱导超极化膜电位(-12.0±1.4 mV)并使神经元活动减少。GABA诱导的去极化和超极化均被荷包牡丹碱阻断,表明由GABAA受体介导。3. 在培养的第一周,GABA诱发电流的反转电位在-40至-50 mV之间,培养3周后移至-70 mV以下。同时,从较老动物(出生后第5天)分离的神经元对GABA诱发电流的反转电位比从较年轻动物(胚胎第15天)分离的细胞更负,表明反转电位的负向移动在体外和体内均会发生。我们的数据表明,GABA诱导去极化的机制是在年轻而非较老的神经元中发现的去极化氯离子反转电位。4. 与对外源性应用GABA的去极化反应一致,年轻培养物中一些自发的去极化突触后电位对2-氨基-5-磷酰基戊酸(AP5)-6-氰基-7-硝基喹喔啉-2,3-二酮(CNQX)不敏感,但被荷包牡丹碱消除,表明突触释放的GABA在早期发育中介导兴奋性突触传递。5. 通过将快速计算机控制的GABA递送与向记录的神经元中注入阈下正电流相结合,我们发现在年轻培养物中,GABA诱发的去极化可直接触发动作电位,促进一些去极化输入发放动作电位,并分流其他去极化输入。GABA诱导的去极化是兴奋性还是抑制性将由GABA诱发电流的反转电位以及GABA诱发去极化与其他兴奋性事件之间的时间关系决定。6. 我们得出结论,在发育中的下丘脑中,GABA诱发电流的反转电位从去极化向超极化发生负向转变。因此,GABA神经传递在早期发育过程中可能发挥兴奋性和抑制性双重作用。

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GABA receptors precede glutamate receptors in hypothalamic development; differential regulation by astrocytes.γ-氨基丁酸(GABA)受体在丘脑下部发育过程中先于谷氨酸受体出现;受星形胶质细胞的差异调节。
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