Vornanen M, Tuomennoro J
Department of Biology, University of Joensuu, FIN-80101 Joensuu, Finland.
Am J Physiol. 1999 Aug;277(2):R465-75. doi: 10.1152/ajpregu.1999.277.2.R465.
The objective of this study was to characterize the effects of acute anoxia on contractile and electrical activity in the heart of an anoxia-tolerant fish species, the crucian carp (Carassius carassius L.). Responses of atrial and ventricular tissue or isolated cells to NaCN, adenosine, and carbachol were determined to examine the effects of anoxia on cardiac performance and to clarify the possible role of local purinergic modulation and parasympathetic nervous control in the function of the anoxic fish heart. The contractility of the crucian carp heart is strongly decreased by acute anoxia. A rapid reduction in cardiac contractility is attained by reflex bradycardia and suppression of atrial contractility. These responses are mediated by muscarinic cholinergic receptors through the opening of inwardly rectifying potassium channels and are likely to protect the cardiac muscle from hypoxic/anoxic damage. The depletion of tissue oxygen content also directly depresses heart rate and cardiac force. Ultimately, an increase in cytosolic Ca(2+) concentration occurs that activates sarcolemmal Ca(2+) extrusion through the Na(+)-Ca(2+)-exchange and generates an inward exchange current with consequent depolarization of the resting membrane potential and possible cell death. At physiological concentration, the effects of adenosine on contractile and electrical activity were relatively weak, suggesting that the purinergic system is not involved in the acute anoxia response of the crucian carp heart.
本研究的目的是描述急性缺氧对耐缺氧鱼类鲫鱼(Carassius carassius L.)心脏收缩和电活动的影响。测定心房和心室组织或分离细胞对氰化钠、腺苷和卡巴胆碱的反应,以研究缺氧对心脏功能的影响,并阐明局部嘌呤能调节和副交感神经控制在缺氧鱼类心脏功能中的可能作用。急性缺氧会使鲫鱼心脏的收缩力大幅下降。通过反射性心动过缓和心房收缩力的抑制,可迅速降低心脏收缩力。这些反应由毒蕈碱胆碱能受体介导,通过内向整流钾通道的开放实现,可能保护心肌免受缺氧/无氧损伤。组织氧含量的耗尽也会直接降低心率和心脏力量。最终,胞质Ca(2+)浓度升高,激活通过Na(+)-Ca(2+)-交换的肌膜Ca(2+)外排,并产生内向交换电流,导致静息膜电位去极化以及可能的细胞死亡。在生理浓度下,腺苷对收缩和电活动的影响相对较弱,这表明嘌呤能系统不参与鲫鱼心脏的急性缺氧反应。