Department of Pharmacology, Nihon University School of Dentistry, Tokyo, Japan.
J Neurophysiol. 2010 May;103(5):2876-88. doi: 10.1152/jn.00972.2009. Epub 2010 Mar 24.
beta-Adrenoceptors play a crucial role in the regulation of taste aversion learning in the insular cortex (IC). However, beta-adrenergic effects on inhibitory synaptic transmission mediated by gamma-aminobutyric acid (GABA) remain unknown. To elucidate the mechanisms of beta-adrenergic modulation of inhibitory synaptic transmission, we performed paired whole cell patch-clamp recordings from layer V GABAergic interneurons and pyramidal cells of rat IC aged from postnatal day 17 (PD17) to PD46 and examined the effects of isoproterenol, a beta-adrenoceptor agonist, on unitary inhibitory postsynaptic currents (uIPSCs). Isoproterenol (100 microM) induced facilitating effects on uIPSCs in 33.3% of cell pairs accompanied by decreases in coefficient of variation (CV) of the first uIPSC amplitude and paired-pulse ratio (PPR) of the second to first uIPSC amplitude, whereas 35.9% of pairs showed suppressive effects of isoproterenol on uIPSC amplitude obtained from fast spiking (FS) to pyramidal cell pairs. Facilitatory effects of isoproterenol were frequently observed in FS-pyramidal cell pairs at > or =PD24. On the other hand, isoproterenol suppressed uIPSC amplitude by 52.3 and 39.8% in low-threshold spike (LTS)-pyramidal and late spiking (LS)-pyramidal cell pairs, respectively, with increases in CV and PPR. The isoproterenol-induced suppressive effects were blocked by preapplication of 100 microM propranolol, a beta-adrenoceptor antagonist. There was no significant correlation between age and changes of uIPSCs in LTS-/LS-pyramidal cell pairs. These results suggest the presence of differential mechanisms in presynaptic GABA release and/or postsynaptic GABA(A) receptor-related assemblies among interneuron subtypes. Age- and interneuron subtype-specific beta-adrenergic modulation of IPSCs may contribute to experience-dependent plasticity in the IC.
β-肾上腺素受体在调节岛叶皮质(IC)中的味觉厌恶学习中起着至关重要的作用。然而,β-肾上腺素能对γ-氨基丁酸(GABA)介导的抑制性突触传递的影响尚不清楚。为了阐明β-肾上腺素能调节抑制性突触传递的机制,我们从出生后第 17 天(PD17)至第 46 天的大鼠 IC 的第 V 层 GABA 能中间神经元和锥体神经元中进行了配对全细胞膜片钳记录,并检查了异丙肾上腺素(β-肾上腺素受体激动剂)对单位抑制性突触后电流(uIPSCs)的影响。异丙肾上腺素(100μM)诱导 33.3%的细胞对 uIPSCs 产生易化作用,同时降低第一 uIPSC 幅度的变异系数(CV)和第二至第一 uIPSC 幅度的成对脉冲比(PPR),而 35.9%的细胞对 uIPSCs 幅度产生抑制作用从快速放电(FS)到锥体细胞对。在>或=PD24 的 FS-锥体细胞对中经常观察到异丙肾上腺素的易化作用。另一方面,异丙肾上腺素通过增加 CV 和 PPR,分别抑制低阈值 spike(LTS)-锥体和迟发性 spike(LS)-锥体细胞对 uIPSCs 的幅度,抑制幅度为 52.3%和 39.8%。β-肾上腺素受体拮抗剂 100μM 普萘洛尔预先应用可阻断异丙肾上腺素诱导的抑制作用。在 LTS-/LS-锥体细胞对中,uIPSCs 的变化与年龄之间没有显著相关性。这些结果表明,在中间神经元亚型中,存在 GABA 前释放和/或突触后 GABA(A)受体相关组装的不同机制。年龄和中间神经元亚型特异性的 IPSC 异丙肾上腺素能调制可能有助于 IC 中的经验依赖性可塑性。