首页> 外文期刊>Anesthesiology >Isoflurane reduces excitability of Drosophila larval motoneurons by activating a hyperpolarizing leak conductance.
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Isoflurane reduces excitability of Drosophila larval motoneurons by activating a hyperpolarizing leak conductance.

机译:异氟烷通过激活超极化泄漏电导来降低果蝇幼虫运动神经元的兴奋性。

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BACKGROUND: Mechanisms of anesthetic-mediated presynaptic inhibition are incompletely understood. Isoflurane reduces presynaptic excitability at the larval Drosophila neuromuscular junction, slowing conduction velocity and depressing glutamate release. Mutations in the Para voltage-gated Na channel enhance anesthetic sensitivity of adult flies. Here, the author examines the role of para in anesthetic sensitivity and seeks to identify the conductance underlying presynaptic inhibition at this synapse. METHODS: Neuromuscular transmission was studied using a two-electrode voltage clamp, with isoflurane applied in physiologic saline. The relation between ionic conductances and presynaptic function was modeled in the Neuron Simulation Environment. Motoneuron ionic currents were monitored via whole cell recordings. RESULTS: Presynaptic inhibition by isoflurane was enhanced significantly in para mutants. Computer simulations of presynaptic actions of anesthetics indicated that each candidate target conductancewould have diagnostic effects on the relation between latency and amplitude of synaptic currents. The experimental latency-amplitude relation for isoflurane most closely resembled activation of a simulated hyperpolarizing leak. Simulations indicated that increased isoflurane potency in para axons resulted from reduced excitability of mutant axons. In whole cell recordings, isoflurane activated a hyperpolarizing leak current. The effects of isoflurane at the neuromuscular junction were insensitive to low pH. CONCLUSIONS: The effects of isoflurane on presynaptic excitability are mediated via an acid-insensitive inhibitory leak conductance. para mutations enhance the sensitivity of this anesthetic-modulated neural pathway by reducing axonal excitability. This work provides a link between anesthetic-sensitive leak currents and presynaptic function and has generated new tools for analysis of the function of this synapse.
机译:背景:麻醉药介导的突触前抑制的机制尚未完全了解。异氟烷可降低果蝇幼虫神经肌肉连接处的突触前兴奋性,减慢传导速度并抑制谷氨酸释放。 Para电压门控Na通道中的突变增强了成年果蝇的麻醉敏感性。在这里,作者检查了对位药在麻醉敏感性中的作用,并试图确定在该突触中潜在的突触前抑制的电导。方法:使用两电极电压钳研究了异氟烷在生理盐水中的神经肌肉传递。离子电导与突触前功能之间的关系是在神经元模拟环境中建模的。通过全细胞记录监测单动子离子电流。结果:在异突变体中,异氟烷对突触前的抑制作用显着增强。麻醉剂的突触前作用的计算机模拟表明,每个候选目标电导将对潜伏期和突触电流幅度之间的关系具有诊断作用。异氟醚的实验等待时间-振幅关系最类似于模拟超极化泄漏的激活。模拟表明对位轴突中异氟烷的效力增加是由于突变轴突的兴奋性降低所致。在整个细胞记录中,异氟烷激活了超极化泄漏电流。异氟烷在神经肌肉接头处的作用对低pH不敏感。结论:异氟烷对突触前兴奋性的影响是通过对酸不敏感的抑制性泄漏电导来介导的。对位突变通过降低轴突兴奋性而增强了这种麻醉药调节的神经通路的敏感性。这项工作提供了麻醉敏感的泄漏电流和突触前功能之间的联系,并已产生了用于分析这种突触功能的新工具。

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