首页> 外文OA文献 >Nitric oxide-soluble guanylyl cyclase signaling regulates corticostriatal transmission and short-term synaptic plasticity of striatal projection neurons recorded in vivo.
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Nitric oxide-soluble guanylyl cyclase signaling regulates corticostriatal transmission and short-term synaptic plasticity of striatal projection neurons recorded in vivo.

机译:一氧化氮可溶的鸟苷酰环化酶信号传导调节体内记录的纹状体投射神经元的皮质口传递和短期突触可塑性。

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摘要

Striatal medium-sized spiny neurons (MSNs) contain the highest levels of soluble guanylyl cyclase (sGC) in the brain. Striatal sGC signaling is activated by nitric oxide (NO) and other neuromodulators. MSNs also express cGMP-dependent protein kinase and other components of the cGMP signaling system which are critically involved in integrating corticostriatal transmission and regulating synaptic plasticity in striatal networks. However, the influence of tonic and phasic activation of this signaling pathway on striatal MSN activity is poorly understood. The present study examined the impact of systemic administration of the selective sGC inhibitor [1H-[1,2,4]oxadiazolo-[4,3-a]quinoxalin-1-one] (ODQ) on spike activity evoked using low and high frequency electrical stimulation of the frontal cortex. MSN activity was monitored using single-unit extracellular recordings in urethane-anesthetized rats. ODQ administration significantly decreased spike activity evoked by low frequency cortical stimulation in a stimulus intensity- and time-dependent manner. Additionally, ODQ administered along with the neuronal NO synthase inhibitor 7-nitroindazole (7-NI) potently decreased the incidence of excitatory responses observed during high-frequency train stimulation of the contralateral frontal cortex. The short-term depression of cortically-evoked spike activity induced by train stimulation was enhanced following pretreatment with ODQ in MSNs exhibiting an excitatory response during cortical train stimulation. Unexpectedly, this effect of ODQ was reversed in animals receiving co-administration of ODQ and 7-NI. 7-NI/ODQ co-administration also reversed measures of short-term depression observed in MSNs exhibiting an inhibitory response during cortical train stimulation. These observations extend previous studies showing that tonic and phasic NO-sGC signaling modulates the responsiveness of MSNs to corticostriatal input. Moreover, phasic activation of NO signaling is likely to regulate short-term changes in corticostriatal synaptic plasticity via complex mechanisms involving both sGC-cGMP-dependent and independent pathways.
机译:纹状体中型多刺神经元(MSNs)在大脑中包含最高水平的可溶性鸟苷酸环化酶(sGC)。一氧化氮(NO)和其他神经调节剂激活纹状体sGC信号。 MSNs还表达cGMP依赖性蛋白激酶和cGMP信号系统的其他组件,这些组件在整合皮层神经传递和调节纹状体网络中的突触可塑性中至关重要。但是,该信号传导途径的强直和逐步激活对纹状体MSN活性的影响知之甚少。本研究研究了选择性sGC抑制剂[1H- [1,2,4]恶二唑-[4,3-a]喹喔啉-1-一](ODQ)全身给药对高低激发诱发的穗期活动的影响。额叶皮质电刺激。 MSN活性使用氨基甲酸乙酯麻醉的大鼠中的单单元细胞外记录进行监测。 ODQ的给药以强度和时间依赖的方式显着降低了低频皮质刺激引起的刺突活动。此外,与神经元NO合酶抑制剂7-硝基吲唑(7-NI)一起使用的ODQ可以有效降低高频对侧额叶皮层刺激过程中观察到的兴奋性反应的发生率。在皮质火车刺激过程中表现出兴奋性反应的MSN中,用ODQ预处理后,由火车刺激引起的皮质诱发的棘突活动的短期抑制得到增强。出乎意料的是,在同时服用ODQ和7-NI的动物中,ODQ的这种作用被逆转了。 7-NI / ODQ共同给药还逆转了在皮质火车刺激过程中表现出抑制反应的MSN中观察到的短期抑郁的测量。这些观察结果扩展了以前的研究,这些研究表明进补和阶段性NO-sGC信号传导可调节MSN对皮质口输入的响应性。此外,NO信号的阶段性激活很可能通过涉及sGC-cGMP依赖和独立途径的复杂机制来调节皮质口突触可塑性的短期变化。

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