首页> 美国卫生研究院文献>The Journal of Physiology >Mapping the cellular electrophysiology of rat sympathetic preganglionic neurones to their roles in cardiorespiratory reflex integration: a whole cell recording study in situ
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Mapping the cellular electrophysiology of rat sympathetic preganglionic neurones to their roles in cardiorespiratory reflex integration: a whole cell recording study in situ

机译:将大鼠交感神经节前神经元的细胞电生理学映射到它们在心肺反射整合中的作用:原位全细胞记录研究

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摘要

Sympathetic preganglionic neurones (SPNs) convey sympathetic activity flowing from the CNS to the periphery to reach the target organs. Although previous in vivo and in vitro cell recording studies have explored their electrophysiological characteristics, it has not been possible to relate these characteristics to their roles in cardiorespiratory reflex integration. We used the working heart–brainstem preparation to make whole cell patch clamp recordings from T3–4 SPNs (n = 98). These SPNs were classified by their distinct responses to activation of the peripheral chemoreflex, diving response and arterial baroreflex, allowing the discrimination of muscle vasoconstrictor-like (MVClike, 39%) from cutaneous vasoconstrictor-like (CVClike, 28%) SPNs. The MVClike SPNs have higher baseline firing frequencies (2.52 ± 0.33 Hz vs. CVClike 1.34 ± 0.17 Hz, P = 0.007). The CVClike have longer after-hyperpolarisations (314 ± 36 ms vs. MVClike 191 ± 13 ms, P < 0.001) and lower input resistance (346 ± 49  MΩ vs. MVClike 496 ± 41 MΩ, P < 0.05). MVClike firing was respiratory-modulated with peak discharge in the late inspiratory/early expiratory phase and this activity was generated by both a tonic and respiratory-modulated barrage of synaptic events that were blocked by intrathecal kynurenate. In contrast, the activity of CVClike SPNs was underpinned by rhythmical membrane potential oscillations suggestive of gap junctional coupling. Thus, we have related the intrinsic electrophysiological properties of two classes of SPNs in situ to their roles in cardiorespiratory reflex integration and have shown that they deploy different cellular mechanisms that are likely to influence how they integrate and shape the distinctive sympathetic outputs.
机译:交感神经节前神经元(SPNs)传递从CNS到外周到达目标器官的交感神经活动。尽管以前的体内和体外细胞记录研究已经探索了它们的电生理特性,但不可能将这些特性与其在心肺反射整合中的作用联系起来。我们使用了工作良好的脑-脑干来制作T3–4 SPN(n = 98)的全细胞膜片钳记录。这些SPN通过对外周化学反射激活,潜水反应和动脉压力反射的独特反应进行分类,从而可将肌肉血管收缩样(MVC样,39%)与皮肤血管收缩样(CVC样,28%)区别开来。 MVClike SPN具有更高的基准发射频率(2.52±0.33 Hz vs.CVClike 1.34±0.17 Hz,P = 0.007)。 CVClike的超极化后时间更长(314±36 ms vs.MVClike 191±13 ms,P <0.001)和更低的输入电阻(346±49MΩvs.MVClike 496±41MΩ,P <0.05)。 MVC样放电在吸气后期/早期呼气阶段以峰值放电进行呼吸调节,并且该活性是由鞘内运动尿酸盐阻断的突触事件的强直和呼吸调节弹幕产生的。相比之下,CVC样SPNs的活性由提示间隙连接偶联的节律性膜电位振荡来支撑。因此,我们已经将两类SPNs的固有电生理特性与其在心肺反射整合中的作用相关联,并表明它们部署了不同的细胞机制,这些机制可能会影响它们如何整合和塑造独特的交感神经输出。

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