Center for Integrative Brain Research, Seattle Children's Research Institute, University of Washington School of Medicine , Seattle, Washington.
Physiology (Bethesda). 2018 Sep 1;33(5):302-316. doi: 10.1152/physiol.00025.2018.
Breathing's remarkable ability to adapt to changes in metabolic, environmental, and behavioral demands stems from a complex integration of its rhythm-generating network within the wider nervous system. Yet, this integration complicates identification of its specific rhythmogenic elements. Based on principles learned from smaller rhythmic networks of invertebrates, we define criteria that identify rhythmogenic elements of the mammalian breathing network and discuss how they interact to produce robust, dynamic breathing.
呼吸具有适应代谢、环境和行为需求变化的显著能力,这源于其在更广泛的神经系统中产生节律的网络的复杂整合。然而,这种整合使得确定其特定的节律产生元素变得复杂。基于从较小的无脊椎动物节律网络中学到的原理,我们定义了识别哺乳动物呼吸网络的节律产生元素的标准,并讨论它们如何相互作用以产生强大、动态的呼吸。
Physiology (Bethesda). 2018-9-1
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