Rinetti-Vargas Gina, Phamluong Khanhky, Ron Dorit, Bender Kevin J
Center for Integrative Neuroscience, University of California, San Francisco, San Francisco, CA 94143, USA; UCSF Weill Institute for Neuroscience, University of California, San Francisco, San Francisco, CA 94143, USA; Department of Neurology, University of California, San Francisco, San Francisco, CA 94143, USA.
UCSF Weill Institute for Neuroscience, University of California, San Francisco, San Francisco, CA 94143, USA; Department of Neurology, University of California, San Francisco, San Francisco, CA 94143, USA.
Cell Rep. 2017 Jul 5;20(1):21-29. doi: 10.1016/j.celrep.2017.06.030.
Neuronal chloride levels are developmentally regulated. Early in life, high intracellular concentrations support chloride efflux and depolarization at GABAergic synapses. In mouse, intracellular chloride decreases over the first postnatal week in the somatodendritic compartment, eventually supporting mature, hyperpolarizing GABAergic inhibition. In contrast to this dendritic switch, it is less clear how GABAergic signaling at the axon initial segment (AIS) functions in mature pyramidal cells, as reports of both depolarization and hyperpolarization have been reported in the AIS past the first postnatal week. Here, we show that GABAergic signaling at the AIS of prefrontal pyramidal cells, indeed, switches polarity from depolarizing to hyperpolarizing but does so over a protracted periadolescent period. This is the most delayed maturation in chloride reversal in any structure studied to date and suggests that chandelier cells, which mediate axo-axonic inhibition, play a unique role in the periadolescent maturation of prefrontal circuits.
神经元内的氯离子水平受到发育调控。在生命早期,高细胞内浓度支持氯离子外流以及GABA能突触处的去极化。在小鼠中,出生后的第一周内,躯体树突区域的细胞内氯离子水平会下降,最终支持成熟的、超极化的GABA能抑制作用。与这种树突转换不同的是,在成熟锥体细胞中,轴突起始段(AIS)处的GABA能信号传导如何发挥作用尚不清楚,因为在出生后第一周之后,AIS处既有去极化的报道,也有超极化的报道。在这里,我们表明,前额叶锥体细胞AIS处的GABA能信号传导确实会从去极化转变为超极化,但这一转变发生在青春期前后的一段较长时间内。这是迄今为止所研究的任何结构中氯离子反转最延迟的成熟过程,表明介导轴-轴抑制的吊灯细胞在前额叶回路的青春期前后成熟过程中发挥着独特作用。