延迟GABA的转移间接影响发育中的海马体的膜特性

C. Peerboom, Sam de Kater, Nikki Jonker, Marijn P.J.M. Rieter, T. Wijne, C. Wierenga
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引用次数: 0

摘要

在出生后的前两周,啮齿动物的神经元内氯离子浓度逐渐降低,导致GABA反应从去极化到超极化转变。在神经发育障碍的啮齿动物模型和人类患者中,出生后GABA的转移是延迟的,但是延迟的GABA转移对发育中的大脑的影响仍然不清楚。在这里,我们通过使用VU0463271(一种氯离子输出物KCC2的特异性抑制剂)处理1周,研究了出生后GABA延迟转移对6- 7 d龄小鼠器官型海马培养物网络发育的直接和间接影响。我们证实,VU处理延迟了GABA的转移,并使GABA信号去极化直到DIV9。我们发现,VU处理后,DIV9兴奋性和抑制性突触的结构和功能发育不受影响。与之前的研究一致,我们观察到GABA信号在对照组和vu处理的产后切片中已经被抑制。令人惊讶的是,在VU处理结束14天后(DIV21),我们观察到CA1锥体细胞中自发抑制性突触后电流频率增加,而兴奋性电流没有改变。突触数和释放概率不受影响。我们发现辐射层中树突为目标的中间神经元的静息膜电位升高,而锥体细胞的兴奋性较对照组低。我们的研究结果表明,去极化的GABA信号不会促进P7后突触的形成,并表明出生后细胞内氯离子水平以细胞特异性的方式间接影响膜特性。在大脑发育过程中,神经递质GABA的作用由去极化转变为超极化。这种转变被认为在突触形成中起着关键作用。延迟移位在神经发育障碍的啮齿动物模型和人类患者中很常见,但其对突触发育的影响尚不清楚。在这里,我们在器官型海马培养中延迟了1周的GABA转移,并仔细检查了回路发育的后果。我们发现延迟这种转变对突触发育没有直接影响,而是导致膜特性的间接的、细胞类型特异性的变化。我们的数据要求仔细评估神经发育障碍中细胞兴奋性的改变。
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Delaying the GABA Shift Indirectly Affects Membrane Properties in the Developing Hippocampus
During the first two postnatal weeks, intraneuronal chloride concentrations in rodents gradually decrease, causing a shift from depolarizing to hyperpolarizing GABA responses. The postnatal GABA shift is delayed in rodent models for neurodevelopmental disorders and in human patients, but the impact of a delayed GABA shift on the developing brain remains obscure. Here we examine the direct and indirect consequences of a delayed postnatal GABA shift on network development in organotypic hippocampal cultures made from 6- to 7-d-old mice by treating the cultures for 1 week with VU0463271, a specific inhibitor of the chloride exporter KCC2. We verified that VU treatment delayed the GABA shift and kept GABA signaling depolarizing until DIV9. We found that the structural and functional development of excitatory and inhibitory synapses at DIV9 was not affected after VU treatment. In line with previous studies, we observed that GABA signaling was already inhibitory in control and VU-treated postnatal slices. Surprisingly, 14 d after the VU treatment had ended (DIV21), we observed an increased frequency of spontaneous inhibitory postsynaptic currents in CA1 pyramidal cells, while excitatory currents were not changed. Synapse numbers and release probability were unaffected. We found that dendrite-targeting interneurons in the stratum radiatum had an elevated resting membrane potential, while pyramidal cells were less excitable compared with control slices. Our results show that depolarizing GABA signaling does not promote synapse formation after P7, and suggest that postnatal intracellular chloride levels indirectly affect membrane properties in a cell-specific manner. SIGNIFICANCE STATEMENT During brain development, the action of neurotransmitter GABA shifts from depolarizing to hyperpolarizing. This shift is a thought to play a critical role in synapse formation. A delayed shift is common in rodent models for neurodevelopmental disorders and in human patients, but its consequences for synaptic development remain obscure. Here, we delayed the GABA shift by 1 week in organotypic hippocampal cultures and carefully examined the consequences for circuit development. We find that delaying the shift has no direct effects on synaptic development, but instead leads to indirect, cell type-specific changes in membrane properties. Our data call for careful assessment of alterations in cellular excitability in neurodevelopmental disorders.
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