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运动过程中呼吸控制的综述。

A review of the control of breathing during exercise.

作者信息

Mateika J H, Duffin J

机构信息

Department of Physiology, University of Toronto, Ontario, Canada.

出版信息

Eur J Appl Physiol Occup Physiol. 1995;71(1):1-27. doi: 10.1007/BF00511228.

Abstract

During the past 100 years many experimental investigations have been carried out in an attempt to determine the control mechanisms responsible for generating the respiratory responses observed during incremental and constant-load exercise tests. As a result of these investigations a number of different and contradictory control mechanisms have been proposed to be the sole mediators of exercise hyperpnea. However, it is now becoming evident that none of the proposed mechanisms are solely responsible for eliciting the exercise respiratory response. The present-day challenge appears to be one of synthesizing the proposed mechanisms, in order to determine the role that each mechanism has in controlling ventilation during exercise. This review, which has been divided into three primary sections, has been designed to meet this challenge. The aim of the first section is to describe the changes in respiration that occur during constant-load and incremental exercise. The second section briefly introduces the reader to traditional and contemporary control mechanisms that might be responsible for eliciting at least a portion of the exercise ventilatory response during these types of exercise. The third section describes how the traditional and contemporary control mechanisms may interact in a complex fashion to produce the changes in breathing associated with constant-load exercise, and incorporates recent experimental evidence from our laboratory.

摘要

在过去的100年里,人们进行了许多实验研究,试图确定在递增负荷和恒定负荷运动测试中产生所观察到的呼吸反应的控制机制。这些研究的结果是,人们提出了许多不同且相互矛盾的控制机制,认为它们是运动性通气过度的唯一介导因素。然而,现在越来越明显的是,没有一种提出的机制能单独引发运动时的呼吸反应。当前的挑战似乎是如何综合这些提出的机制,以确定每种机制在运动时控制通气方面所起的作用。这篇综述分为三个主要部分,旨在应对这一挑战。第一部分的目的是描述在恒定负荷和递增负荷运动过程中发生的呼吸变化。第二部分简要向读者介绍传统和当代的控制机制,这些机制可能至少引发了这些类型运动中的一部分运动通气反应。第三部分描述了传统和当代控制机制如何以复杂的方式相互作用,从而产生与恒定负荷运动相关的呼吸变化,并纳入了我们实验室最近的实验证据。

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