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心跳通过压力感受器介导的呼气活动调节来带动呼吸。

Heartbeats entrain breathing via baroreceptor-mediated modulation of expiratory activity.

作者信息

Barnett William H, Baekey David M, Paton Julian F R, Dick Thomas E, Wehrwein Erica A, Molkov Yaroslav I

机构信息

Department of Mathematics and Statistics, Georgia State University, Atlanta, GA, USA.

Department of Pharmacology and Therapeutics, University of Florida, Gainesville, FL, USA.

出版信息

Exp Physiol. 2021 May;106(5):1181-1195. doi: 10.1113/EP089365. Epub 2021 Apr 1.

Abstract

NEW FINDINGS

Cardio-ventilatory coupling refers to the onset of inspiration occurring at a preferential latency following the last heartbeat (HB) in expiration. According to the cardiac-trigger hypothesis, the pulse pressure initiates an inspiration via baroreceptor activation. However, the central neural substrate mediating this coupling remains undefined. Using a combination of animal data, human data and mathematical modelling, this study tests the hypothesis that the HB, by way of pulsatile baroreflex activation, controls the initiation of inspiration that occurs through a rapid neural activation loop from the carotid baroreceptors to Bötzinger complex expiratory neurons.

ABSTRACT

Cardio-ventilatory coupling refers to a heartbeat (HB) occurring at a preferred latency prior to the next breath. We hypothesized that the pressure pulse generated by a HB activates baroreceptors that modulate brainstem expiratory neuronal activity and delay the initiation of inspiration. In supine male subjects, we recorded ventilation, electrocardiogram and blood pressure during 20-min epochs of baseline, slow-deep breathing and recovery. In in situ rodent preparations, we recorded brainstem activity in response to pulses of perfusion pressure. We applied a well-established respiratory network model to interpret these data. In humans, the latency between a HB and onset of inspiration was consistent across different breathing patterns. In in situ preparations, a transient pressure pulse during expiration activated a subpopulation of expiratory neurons normally active during post-inspiration, thus delaying the next inspiration. In the model, baroreceptor input to post-inspiratory neurons accounted for the effect. These studies are consistent with baroreflex activation modulating respiration through a pauci-synaptic circuit from baroreceptors to onset of inspiration.

摘要

新发现

心肺耦合是指在呼气时最后一次心跳(HB)后以特定潜伏期出现吸气起始。根据心脏触发假说,脉压通过压力感受器激活引发吸气。然而,介导这种耦合的中枢神经基质仍不明确。本研究结合动物数据、人体数据和数学建模,检验了以下假说:心跳通过搏动性压力反射激活,控制吸气起始,这一过程通过从颈动脉压力感受器到包钦格复合体呼气神经元的快速神经激活环路实现。

摘要

心肺耦合是指在下一次呼吸之前以特定潜伏期出现的心跳(HB)。我们假设心跳产生的压力脉冲激活压力感受器,调节脑干呼气神经元活动并延迟吸气起始。在仰卧男性受试者中,我们在基线、慢深呼吸和恢复的20分钟时段内记录通气、心电图和血压。在原位啮齿动物标本中,我们记录了对灌注压力脉冲的脑干活动。我们应用一个成熟的呼吸网络模型来解释这些数据。在人体中,不同呼吸模式下心跳与吸气起始之间的潜伏期是一致的。在原位标本中,呼气时的短暂压力脉冲激活了通常在吸气后活跃的一部分呼气神经元,从而延迟了下一次吸气。在模型中,压力感受器对吸气后神经元的输入解释了这种效应。这些研究与压力反射激活通过从压力感受器到吸气起始的少突触回路调节呼吸一致。

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