The role of glycinergic inhibition in respiratory pattern formation and cardio-respiratory coupling in rats

IF 2.1 Q3 PHYSIOLOGY
Werner Issao Furuya, Rishi R. Dhingra, Pedro Trevizan-Baú, Robin M. McAllen, Mathias Dutschmann
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引用次数: 3

Abstract

Cardio-respiratory coupling is reflected as respiratory sinus arrhythmia (RSA) and inspiratory-related bursting of sympathetic nerve activity. Inspiratory-related inhibitory and/or postinspiratory-related excitatory drive of cardiac vagal motoneurons (CVMs) can generate RSA. Since respiratory oscillations may depend on synaptic inhibition, we investigated the effects of blocking glycinergic neurotransmission (systemic and local application of the glycine receptor (GlyR) antagonist, strychnine) on the expression of the respiratory motor pattern, RSA and sympatho-respiratory coupling. We recorded heart-rate, phrenic, recurrent laryngeal and thoracic sympathetic nerve activities (PNA, RLNA, t-SNA) in a working-heart-brainstem preparation of rats, and show that systemic strychnine (50–200 ​nM) abolished RSA and triggered a shift of postinspiratory RLNA into inspiration, while t-SNA remained unchanged. Bilateral strychnine microinjection into the ventrolateral medullary area containing CVMs and laryngeal motoneurons (LMNs) of the nucleus ambiguus (NA/CVLM), the nucleus tractus solitarii, pre-Bötzinger Complex, Bötzinger Complex or Kölliker-Fuse nuclei revealed that only NA/CVLM strychnine microinjections mimicked the effects of systemic application. In all other target nuclei, except the Bötzinger Complex, GlyR-blockade attenuated the inspiratory-tachycardia of the RSA to a similar degree while evoking only a modest change in respiratory motor patterning, without changing the timing of postinspiratory-RLNA, or t-SNA. Thus, glycinergic inhibition at the motoneuronal level is involved in the generation of RSA and the separation of inspiratory and postinspiratory bursting of LMNs. Within the distributed ponto-medullary respiratory pre-motor network, local glycinergic inhibition contribute to the modulation of RSA tachycardia, respiratory frequency and phase duration but, surprisingly it had no major role in the mediation of respiratory-sympathetic coupling.

Abstract Image

甘氨酸能抑制在大鼠呼吸模式形成和心呼吸耦合中的作用
心肺耦合表现为呼吸性窦性心律失常(RSA)和与吸气相关的交感神经活动爆发。心脏迷走神经运动神经元(cvm)的吸气相关抑制和/或吸气后相关兴奋驱动可产生RSA。由于呼吸振荡可能依赖于突触抑制,我们研究了阻断甘氨酸能神经传递(全身和局部应用甘氨酸受体拮抗剂士的宁)对呼吸运动模式、RSA和交感-呼吸偶联表达的影响。我们记录了心脏-脑干工作制备大鼠的心率、膈神经、喉返神经和胸交感神经活动(PNA、RLNA、t-SNA),结果表明,全身士的宁(50-200 nM)可消除RSA,并触发吸气后RLNA向吸气的转变,而t-SNA保持不变。双侧将士的宁显微注射到含有cvm和喉运动神经元(lns)的腹外侧髓质区,歧见核(NA/CVLM),孤束核,pre-Bötzinger复合体,Bötzinger复合体或Kölliker-Fuse核显示,只有NA/CVLM的士的宁显微注射可以模拟全身应用的效果。在所有其他靶核中,除了Bötzinger复合体外,glyr阻断在相似程度上减弱了RSA的吸气性心动过速,同时仅引起呼吸运动模式的适度变化,而不改变吸气后rlna或t-SNA的时间。因此,运动神经元水平的甘氨酸能抑制参与了RSA的产生以及lmn吸气和吸气后破裂的分离。在分布的桥-髓呼吸前运动网络中,局部甘氨酸能抑制有助于调节RSA心动过速、呼吸频率和相持续时间,但令人惊讶的是,它在呼吸-交感耦合的介导中没有主要作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
3.20
自引率
0.00%
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审稿时长
62 days
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