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Another Look at Early GABAergic Neurotransmission: Maybe It's Not So Exciting After All!

机译:再看看早期的GABA能神经传递:毕竟不是那么令人兴奋!

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In the early postnatal period, energy metabolism in the suckling rodent brain relies to a large extent on metabolic pathways alternate to glucose such as the utilization of ketone bodies (KBs). However, how KBs affect neuronal excitability is not known. Using recordings of single NMDA and GABA-activated channels in neocortical pyramidal cells we studied the effects of KBs on the resting membrane potential (Em) and reversal potential of GABA-induced anionic currents (EGABA), respectively. We show that during postnatal development (P3–P19) if neocortical brain slices are adequately supplied with KBs, Em and EGABA are both maintained at negative levels of about −83 and −80 mV, respectively. Conversely, a KB deficiency causes a significant depolarization of both Em (>5 mV) and EGABA (>15 mV). The KB-mediated shift in EGABA is largely determined by the interaction of the NKCC1 cotransporter and Cl−/HCO3 transporter(s). Therefore, by inducing a hyperpolarizing shift in Em and modulating GABA signaling mode, KBs can efficiently control the excitability of neonatal cortical neurons.
机译:在产后早期,乳鼠啮齿动物的能量代谢在很大程度上依赖于替代葡萄糖的代谢途径,例如酮体(KBs)的利用。但是,KB如何影响神经元兴奋性尚不清楚。使用新皮质锥体细胞中单个NMDA和GABA激活通道的记录,我们分别研究了KBs对GABA诱导的阴离子电流(EGABA)的静息膜电位(Em)和逆转电位的影响。我们显示,在产后发育期间(P3-P19),如果新皮质脑片被充分提供KBs,Em和EGABA都分别维持在大约-83和-80 mV的负水平。相反,KB缺乏会导致Em(> 5 mV)和EGABA(> 15 mV)显着去极化。 EGABA中KB介导的移位很大程度上取决于NKCC1共转运蛋白和Cl- / HCO3转运蛋白的相互作用。因此,通过在Em中诱导超极化转变并调节GABA信号传导模式,KB可以有效地控制新生儿皮质神经元的兴奋性。

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