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运动性通气过度的稳态与最佳感觉运动整合:内部模型范式

Homeostasis of exercise hyperpnea and optimal sensorimotor integration: the internal model paradigm.

作者信息

Poon Chi-Sang, Tin Chung, Yu Yunguo

机构信息

Harvard-MIT Division of Health Sciences and Technology, Bldg. 56-046, Massachusetts Institute of Technology, 77 Massachusetts Avenue, Cambridge, MA 02139, USA.

出版信息

Respir Physiol Neurobiol. 2007 Oct 15;159(1):1-13; discussion 14-20. doi: 10.1016/j.resp.2007.02.020. Epub 2007 Mar 7.

Abstract

Homeostasis is a basic tenet of biomedicine and an open problem for many physiological control systems. Among them, none has been more extensively studied and intensely debated than the dilemma of exercise hyperpnea - a paradoxical homeostatic increase of respiratory ventilation that is geared to metabolic demands instead of the normal chemoreflex mechanism. Classical control theory has led to a plethora of "feedback/feedforward control" or "set point" hypotheses for homeostatic regulation, yet so far none of them has proved satisfactory in explaining exercise hyperpnea and its interactions with other respiratory inputs. Instead, the available evidence points to a far more sophisticated respiratory controller capable of integrating multiple afferent and efferent signals in adapting the ventilatory pattern toward optimality relative to conflicting homeostatic, energetic and other objectives. This optimality principle parsimoniously mimics exercise hyperpnea, chemoreflex and a host of characteristic respiratory responses to abnormal gas exchange or mechanical loading/unloading in health and in cardiopulmonary diseases - all without resorting to a feedforward "exercise stimulus". Rather, an emergent controller signal encoding the projected metabolic level is predicted by the principle as an exercise-induced 'mental percept' or 'internal model', presumably engendered by associative learning (operant conditioning or classical conditioning) which achieves optimality through continuous identification of, and adaptation to, the causal relationship between respiratory motor output and resultant chemical-mechanical afferent feedbacks. This internal model self-tuning adaptive control paradigm opens a new challenge and exciting opportunity for experimental and theoretical elucidations of the mechanisms of respiratory control - and of homeostatic regulation and sensorimotor integration in general.

摘要

内稳态是生物医学的一个基本原理,也是许多生理控制系统面临的一个开放性问题。其中,没有哪个问题比运动性通气过度的困境得到更广泛的研究和更激烈的争论——运动性通气过度是一种矛盾的内稳态呼吸通气增加,它是根据代谢需求而非正常的化学反射机制进行调节的。经典控制理论已经产生了大量关于内稳态调节的“反馈/前馈控制”或“设定点”假说,但到目前为止,没有一个在解释运动性通气过度及其与其他呼吸输入的相互作用方面令人满意。相反,现有证据表明存在一个更为复杂的呼吸控制器,它能够整合多种传入和传出信号,使通气模式相对于相互冲突的内稳态、能量及其他目标朝着最优状态调整。这一最优性原理简洁地模拟了运动性通气过度、化学反射以及健康和心肺疾病中对异常气体交换或机械负荷/卸载的一系列典型呼吸反应——所有这些都无需借助前馈“运动刺激”。相反,该原理预测,一个编码预计代谢水平的新兴控制器信号是一种运动诱导的“心理感知”或“内部模型”,大概是由联想学习(操作性条件反射或经典条件反射)产生的,这种学习通过持续识别和适应呼吸运动输出与由此产生的化学-机械传入反馈之间的因果关系来实现最优性。这种内部模型自整定自适应控制范式为呼吸控制机制以及一般的内稳态调节和感觉运动整合的实验和理论阐释带来了新的挑战和令人兴奋的机遇。

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