酸碱平衡失调对窦房结起搏活动的影响
Effect of Acid-Base Balance Disturbance on Pacemaking of Sinoatrail Node System
DOI: 10.12677/HJCB.2013.31001, PDF, HTML, 下载: 3,019  浏览: 10,513  国家自然科学基金支持
作者: 张季谦*:安徽师范大学物理与电子信息学院;曼彻斯特大学物理与天文系;钱宏明, 马文洋, 梁立嗣, 高飞:安徽师范大学物理与电子信息学院
关键词: 酸碱失调心律失常传导过程仿真模拟Acid-Base Balance Disturbance; Arrhythmia Cordis; Conductive Process; Computer Simulation
摘要: 本文采用兔子心脏的窦房结–心房组织完整的二维细胞解剖模型,通过计算机仿真模拟研究了酸碱平衡失调对细胞膜电压形成及传导过程的影响。模拟结果显示,一方面,可以观测到,当机体呈现一定程度的酸中毒或碱中毒时,窦房结起搏活动发生阻滞,这与临床上酸碱平衡失调引起心血管系统的功能障碍相吻合;另一方面,可以通过引入适当的外界低频信号刺激来消除这种死振,从而让窦房结组织重新恢复正常搏动功能。上述结果将有助于揭示酸碱平衡失调对复杂的心脏体系内在机能的影响,对人类心血管疾病的临床诊断与治疗有一定的理论指导作用。
Abstract: In this paper, by using a 2D anatomical model of the intact SA node and surrounding atrial muscle of the rabbit heart, the effect of the acid-base balance disturbance on the formation of cell membrane voltage and its conductive process is investigated by computer simulation. The results show, on one hand, once the body showed acidosis or alkalosis and to a certain level, it can be found, the pacemaking active block of sinoatrial node-atrium appears, which indicates the acid-base balance disturbance can cause dysfunction of the cardiovascular system just like the clinical mentioned; On the other hand, we found this oscillation death could be eliminated by introducing the appropriate exter- nal low frequency signal stimulation, thereby the normal pacemaking activity could be restored in the SA node tissue. These results may contribute to the understanding about the effect of acid-base balance disturbance on the complex car- diac system, and provide a theoretical guidance on the clinical diagnosis of cardiovascular diseases.
文章引用:张季谦, 钱宏明, 马文洋, 梁立嗣, 高飞. 酸碱平衡失调对窦房结起搏活动的影响[J]. 计算生物学, 2013, 3(1): 1-6. http://dx.doi.org/10.12677/HJCB.2013.31001

参考文献

[1] 陈主初. 病理生理学[M]. 北京: 人民卫生出版社, 2001: 131- 149.
[2] H. G. Zhang, Y. Zhao, M. Lei, H. Dobrzynski, J. H. Liu, A. V. Holden and M. R. Boyett. Computational evaluation of the roles of Na+ current, iNa, and cell death in cardiac pacemaking and driving. American Journal of Physiology—Heart and Circulatory Physiology, 2007, 292(1): 165-174.
[3] 张力峰, 吴国华, 夏玲. 跳动心脏的心电仿真模型建构[J]. 生物物理学报, 2001, 17(1): 114-122.
[4] 朴镇恩. 心脏骤停的血液气体和酸碱平衡失调[J]. 中国急救医学, 1983, 3: 1-2.
[5] C. Steenbergen, G. Deleeuw, T. Rich and J. R. Williamson. Ef- fects of acidosis and ischemia on contractility and intracellular pH of rat heart. American Heart Association, 1977, 41(6): 849- 858.
[6] A. L. Hodgkin, A. F. Huxley. A quantitative description of mem- brane current and its application to conduction and excitation in nerve. Journal of Physiology, 1952, 117(4): 500-544.
[7] 王倩, 马平, 华宁, 陆宏, 唐雪正, 唐发宽. 基于心磁信号的心脏阵列成像及相关性质的研究[J]. 物理学报, 2010, 59: 2882-2888.
[8] R. A. FitzHugn. Impulses and physiological states in the theore- tical models of nerve membrane. Biophysical Journal, 1961, 1(6): 445-466.
[9] C. E. Clancy, Y. Rudy. Linking a genetic defect to its cellular phenotype in a cardiac arrhythmia. Nature, 1999, 400(6744): 566-569.
[10] 申传胜, 张季谦, 陈含爽. 细胞丛状化分布对二维耦合体系尺度选择效应的影响[J]. 物理学报, 2007, 56: 6315-6320.
[11] 钟敏, 唐国宁. 局域反馈抑制心脏中的螺旋波和时空混沌[J]. 物理学报, 2010, 59(3): 1593-1599.
[12] M. E. Mangoni, J. Nargeot. Genesis and regulation of the heart automaticity. Physiological Reviews, 2008, 88(3): 919-982.
[13] J. Q. Zhang, A. V. Holden, O. Monfredi, M. R. Boyett and H. G. Zhang. Stochastic vagal modulation of cardiac pacemaking may lead to erroneous identification of cardiac “chaos”. Chaos, 2009, 19: 1-4.
[14] 臧伟进, 陈莉娜, 于晓江. 迷走神经对心室功能的调控机制研究进展[J]. 生物物理学报, 2005, 57(6): 659-672.
[15] 杨新春, 周鹏, 苏丕雄, 刘秀兰, 张建军, 汪爱虎, 杨舒玲. 人右心室瞬间外向钾电流电不均一性的初步研究[J]. 中华心律失常学杂志, 2006, 10(1): 28-32.
[16] T. D. Butters, O. V. Aslanidi, S. Inada, M. R. Boyett, J. C. Han- cox, M. Lei and H. G. Zhang. Mechanistic links between Na+ channel (SCN5A) mutations and impaired cardiac pacemaking in sick sinus syndrome. Circulation Research, 2010, 107(1): 126-137.
[17] 陈春磊, 张季谦, 梁立嗣, 马文洋, 张恒贵. 利用Java编程对窦房结体系搏动过程进行视图仿真[J]. 中国心脏起搏与心电生理杂志, 2012, 26(2): 156-159.
[18] 王萌, 张季谦, 马文洋, 李翔. 计算机模拟异常血钾浓度对窦房结起搏活性的影响及其调控[J]. 心脏杂志, 2012, 24(2): 146-153.
[19] 王业遒, 张季谦, 斯小琴, 汪春道, 张恒贵. 噪声对窦房结体系钠通道电导作用的计算机仿真研究[J]. 生物物理学报, 2011, 5(27): 443-452.
[20] 斯小琴, 张季谦, 陈春磊, 王业遒, 张恒贵. 心肌组织死亡细胞分布对窦房结搏动信号传导功能的影响[J]. 应用物理, 2011, 1: 35-40.
[21] H. G. Zhang, A. V. Holden, I. Kodama, H. Honjo, M. Lei, T. Varghese and M. R. Boyett. Mathematical models of action po- tentials in the periphery and center of the rabbit sinoatrialnode. American Journal of Physiology—Heart and Circulatory Physi- ology, 2000, 279(1): 397-403.