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TRPM4 介导呼吸化学感受器神经元中的阈下膜电位振荡,从而驱动起搏放电和呼吸。

TRPM4 mediates a subthreshold membrane potential oscillation in respiratory chemoreceptor neurons that drives pacemaker firing and breathing.

机构信息

Department of Pharmacology, University of Virginia, Charlottesville, VA 22908, USA.

Department of Pharmacology, University of Virginia, Charlottesville, VA 22908, USA.

出版信息

Cell Rep. 2021 Feb 2;34(5):108714. doi: 10.1016/j.celrep.2021.108714.

Abstract

Brainstem networks that control regular tidal breathing depend on excitatory drive, including from tonically active, CO/H-sensitive neurons of the retrotrapezoid nucleus (RTN). Here, we examine intrinsic ionic mechanisms underlying the metronomic firing activity characteristic of RTN neurons. In mouse brainstem slices, large-amplitude membrane potential oscillations are evident in synaptically isolated RTN neurons after blocking action potentials. The voltage-dependent oscillations are abolished by sodium replacement; blocking calcium channels (primarily L-type); chelating intracellular Ca; and inhibiting TRPM4, a Ca-dependent cationic channel. Likewise, oscillation voltage waveform currents are sensitive to calcium and TRPM4 channel blockers. Extracellular acidification and serotonin (5-HT) evoke membrane depolarization that augments TRPM4-dependent oscillatory activity and action potential discharge. Finally, inhibition of TRPM4 channels in the RTN of anesthetized mice reduces central respiratory output. These data implicate TRPM4 in a subthreshold oscillation that supports the pacemaker-like firing of RTN neurons required for basal, CO-stimulated, and state-dependent breathing.

摘要

控制有规律呼吸的脑干网络依赖于兴奋性驱动,包括来自延髓梯形核(RTN)中持续活跃、CO/H 敏感的神经元的驱动。在这里,我们研究了 RTN 神经元特征性的韵律性放电活动的内在离子机制。在小鼠脑片上,在阻断动作电位后,突触隔离的 RTN 神经元中明显存在大振幅膜电位振荡。电压依赖性振荡被钠离子替代所消除;钙通道(主要是 L 型)阻断;细胞内 Ca 螯合;并抑制依赖 Ca 的阳离子通道 TRPM4。同样,振荡电压波形电流对钙和 TRPM4 通道阻滞剂敏感。细胞外酸化和 5-羟色胺(5-HT)引起的膜去极化增强了 TRPM4 依赖性振荡活性和动作电位放电。最后,在麻醉小鼠的 RTN 中抑制 TRPM4 通道可降低中枢呼吸输出。这些数据表明 TRPM4 参与了亚阈振荡,该振荡支持 RTN 神经元的类似起搏器样放电,这是基础、CO 刺激和状态依赖呼吸所必需的。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5437/7888550/e5f2aa4717c2/nihms-1669640-f0002.jpg

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