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Inspiratory bursts in the preBötzinger complex depend on a calcium-activated non-specific cation current linked to glutamate receptors in neonatal mice

机译:preBötzinger复合物中的吸气爆发取决于新生小鼠中与谷氨酸受体相关的钙激活的非特异性阳离子电流

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摘要

Inspiratory neurons of the preBötzinger complex (preBötC) form local excitatory networks and display 10–30 mV transient depolarizations, dubbed inspiratory drive potentials, with superimposed spiking. AMPA receptors are critical for rhythmogenesis under normal conditions in vitro but whether other postsynaptic mechanisms contribute to drive potential generation remains unknown. We examined synaptic and intrinsic membrane properties that generate inspiratory drive potentials in preBötC neurons using neonatal mouse medullary slice preparations that generate respiratory rhythm. We found that NMDA receptors, group I metabotropic glutamate receptors (mGluRs), but not group II mGluRs, contributed to inspiratory drive potentials. Subtype 1 of the group I mGluR family (mGluR1) probably regulates a K+ channel, whereas mGluR5 operates via an inositol 1,4,5-trisphosphate (IP3) receptor-dependent mechanism to augment drive potential generation. We tested for and verified the presence of a Ca2+-activated non-specific cation current (ICAN) in preBötC neurons. We also found that high concentrations of intracellular BAPTA, a high-affinity Ca2+ chelator, and the ICAN antagonist flufenamic acid (FFA) decreased the magnitude of drive potentials. We conclude that ICAN underlies robust inspiratory drive potentials in preBötC neurons, and is only fully evoked by ionotropic and metabotropic glutamatergic synaptic inputs, i.e. by network activity.
机译:preBötzinger复合体(preBötC)的吸气神经元形成局部兴奋网络,并显示10–30 mV的瞬态去极化,被称为吸气驱动电位,并有叠加的尖峰。 AMPA受体对于体外正常条件下的节律形成至关重要,但尚不清楚其他突触后机制是否有助于驱动潜在的产生。我们使用产生呼吸节律的新生小鼠髓样切片制剂检查了preBötC神经元中产生吸气驱动电位的突触和内在膜特性。我们发现NMDA受体,I组代谢型谷氨酸受体(mGluRs),而不是II组mGluRs,有助于吸气驱动潜能。 I组mGluR家族(mGluR1)的亚型1可能调节K +通道,而mGluR5通过肌醇1,4,5-三磷酸(IP3)受体依赖性机制起作用,以增加驱动电位的产生。我们测试并验证了preBötC神经元中Ca2 +激活的非特异性阳离子电流(ICAN)的存在。我们还发现高浓度的细胞内BAPTA,高亲和力的Ca2 +螯合剂和ICAN拮抗剂氟芬那酸(FFA)降低​​了驱动电位的大小。我们得出的结论是,ICAN在preBötC神经元中具有强大的吸气驱动潜力,并且仅由离子型和代谢型谷氨酸能突触输入(即网络活动)完全诱发。

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