Cellular and Systems Neurobiology Section, National Institute of Neurological Disorders and Stroke, National Institutes of Health, Bethesda, MD 20892.
Department of Physics, University of New Hampshire, Durham, NH 03824.
eNeuro. 2018 Feb 9;5(1). doi: 10.1523/ENEURO.0332-17.2018. eCollection 2018 Jan-Feb.
Transient receptor potential channel, TRPM4, the putative molecular substrate for Ca-activated nonselective cation current (), is hypothesized to generate bursting activity of pre-Bötzinger complex (pre-BötC) inspiratory neurons and critically contribute to respiratory rhythmogenesis. Another TRP channel, TRPC3, which mediates Na/Ca fluxes, may be involved in regulating Ca-related signaling, including affecting TRPM4/ in respiratory pre-BötC neurons. However, TRPM4 and TRPC3 expression in pre-BötC inspiratory neurons and functional roles of these channels remain to be determined. By single-cell multiplex RT-PCR, we show mRNA expression for these channels in pre-BötC inspiratory neurons in rhythmically active medullary slices from neonatal rats and mice. Functional contributions were analyzed with pharmacological inhibitors of TRPM4 or TRPC3 as well as in mature rodent arterially perfused brainstem-spinal cord preparations. Perturbations of respiratory circuit activity were also compared with those by a blocker of . Pharmacologically attenuating endogenous activation of TRPM4, TRPC3, or similarly reduced the amplitude of inspiratory motoneuronal activity without significant perturbations of inspiratory frequency or variability of the rhythm. Amplitude perturbations were correlated with reduced inspiratory glutamatergic pre-BötC neuronal activity, monitored by multicellular dynamic calcium imaging In more intact circuits , the reduction of pre-BötC and motoneuronal inspiratory activity amplitude was accompanied by reduced post-inspiratory motoneuronal activity, without disruption of rhythm generation. We conclude that endogenously activated TRPM4, which likely mediates , and TRPC3 channels in pre-BötC inspiratory neurons play fundamental roles in respiratory pattern formation but are not critically involved in respiratory rhythm generation.
瞬时受体电位通道 TRPM4 被认为是 Ca2+激活的非选择性阳离子电流 () 的假定分子基础,它被假设为产生 Pre-Bötzinger 复合体 (pre-BötC) 吸气神经元的爆发活动,并对呼吸节律发生起关键作用。另一种 TRP 通道 TRPC3 介导 Na+/Ca2+ 通量,可能参与调节与 Ca2+ 相关的信号转导,包括影响呼吸 Pre-BötC 神经元中的 TRPM4/。然而,pre-BötC 吸气神经元中 TRPM4 和 TRPC3 的表达及其在这些通道中的功能作用仍有待确定。通过单细胞多重 RT-PCR,我们显示在来自新生大鼠和小鼠的节律性活跃的延髓切片中,这些通道的 mRNA 在 Pre-BötC 吸气神经元中表达。通过药理学抑制剂 TRPM4 或 TRPC3 的功能贡献进行了分析,以及在成熟的啮齿动物动脉灌流的脑干-脊髓制备物中进行了分析。还比较了呼吸回路活动的干扰与的阻断剂的干扰。药理学上减弱内源性 TRPM4、TRPC3 或的激活,同样降低吸气运动神经元活动的幅度,而不会显著干扰吸气频率或节律的可变性。幅度干扰与吸气谷氨酸能 Pre-BötC 神经元活性的降低相关,通过多细胞动态钙成像监测 在更完整的回路中,Pre-BötC 和运动神经元吸气活动幅度的降低伴随着吸气后运动神经元活动的降低,而呼吸节律的产生没有中断。我们得出结论,内源性激活的 TRPM4(可能介导)和 Pre-BötC 吸气神经元中的 TRPC3 通道在呼吸模式形成中起基本作用,但在呼吸节律发生中不是关键作用。