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2
The role of fine-scale anatomical structure in the dynamics of reentry in computational models of the rabbit ventricles.精细解剖结构在兔心室计算模型中折返动力学中的作用。
J Physiol. 2012 Sep 15;590(18):4515-35. doi: 10.1113/jphysiol.2012.229062. Epub 2012 Jul 2.
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The role of dynamic instability and wavelength in arrhythmia maintenance as revealed by panoramic imaging with blebbistatin vs. 2,3-butanedione monoxime.全景成像结合 blebbistatin 与 2,3-丁二酮单肟研究动态不稳定性和波长在心律失常维持中的作用。
Am J Physiol Heart Circ Physiol. 2012 Jan 1;302(1):H262-9. doi: 10.1152/ajpheart.00711.2011. Epub 2011 Oct 28.
4
Intramural activation during early human ventricular fibrillation.人心室颤动早期的室壁内激活。
Circ Arrhythm Electrophysiol. 2011 Oct;4(5):692-703. doi: 10.1161/CIRCEP.110.961037. Epub 2011 Jul 12.
5
Ionic mechanisms for electrical heterogeneity between rabbit Purkinje fiber and ventricular cells.兔浦肯野纤维与心室细胞电异质性的离子机制。
Biophys J. 2010 Jun 2;98(11):2420-31. doi: 10.1016/j.bpj.2010.02.033.
6
Arrhythmogenic mechanisms of the Purkinje system during electric shocks: a modeling study.浦肯野系统在电击时的心律失常机制:建模研究。
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7
Transmural optical measurements of Vm dynamics during long-duration ventricular fibrillation in canine hearts.犬心长时间心室颤动期间Vm动力学的透壁光学测量。
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8
Mechanisms of VF maintenance: wandering wavelets, mother rotors, or foci.室颤维持机制:游走小波、母转子或病灶。
Heart Rhythm. 2009 Mar;6(3):405-15. doi: 10.1016/j.hrthm.2008.11.005. Epub 2008 Nov 8.
9
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Heart Rhythm. 2009 Mar;6(3):378-84. doi: 10.1016/j.hrthm.2008.12.016. Epub 2008 Dec 13.
10
Organization of ventricular fibrillation in the human heart: experiments and models.人体心脏室颤的组织:实验与模型
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9V 电池诱发兔心室折返激动的机制。

Mechanism of reentry induction by a 9-V battery in rabbit ventricles.

机构信息

Department of Biomedical Engineering, King's College London, London, United Kingdom;

出版信息

Am J Physiol Heart Circ Physiol. 2014 Apr 1;306(7):H1041-53. doi: 10.1152/ajpheart.00591.2013. Epub 2014 Jan 24.

DOI:10.1152/ajpheart.00591.2013
PMID:24464758
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3962639/
Abstract

Although the application of a 9-V battery to the epicardial surface is a simple method of ventricular fibrillation induction, the fundamental mechanisms underlying this process remain unstudied. We used a combined experimental and modelling approach to understand how the interaction of direct current (DC) from a battery may induce reentrant activity within rabbit ventricles and its dependence on battery application timing and duration. A rabbit ventricular computational model was used to simulate 9-V battery stimulation for different durations at varying onset times during sinus rhythm. Corresponding high-resolution optical mapping measurements were conducted on rabbit hearts with DC stimuli applied via a relay system. DC application to diastolic tissue induced anodal and cathodal make excitations in both simulations and experiments. Subsequently, similar static epicardial virtual electrode patterns were formed that interacted with sinus beats but did not induce reentry. Upon battery release during diastole, break excitations caused single ectopics, similar to application, before sinus rhythm resumed. Reentry induction was possible for short battery applications when break excitations were slowed and forced to take convoluted pathways upon interaction with refractory tissue from prior make excitations or sinus beats. Short-lived reentrant activity could be induced for battery release shortly after a sinus beat for longer battery applications. In conclusion, the application of a 9-V battery to the epicardial surface induces reentry through a complex interaction of break excitations after battery release with prior induced make excitations or sinus beats.

摘要

虽然将 9V 电池应用于心外膜表面是诱发心室颤动的一种简单方法,但这一过程的基本机制仍未得到研究。我们采用了实验与建模相结合的方法,以了解电池直流电的相互作用如何在兔心室中引发折返活动,以及这种作用取决于电池的应用时机和持续时间。使用兔心室计算模型,模拟了在窦性节律期间不同起始时间下,不同持续时间的 9V 电池刺激。通过继电器系统,对施加直流电刺激的兔心进行了相应的高分辨率光学标测测量。在模拟和实验中,DC 应用于舒张组织会引起阳极和阴极除极激发。随后,形成了类似的静态心外膜虚拟电极模式,这些模式与窦性搏动相互作用,但不会引发折返。在舒张期释放电池时,断路激发会引起单个异位搏动,类似于应用时的情况,然后窦性节律恢复。当断路激发减慢并在与先前的除极激发或窦性搏动的不应期组织相互作用时被迫采用迂回路径时,短时间的电池应用就可以诱发折返。对于长时间的电池应用,当窦性搏动后不久释放电池时,也可以短暂地引发折返性活动。总之,将 9V 电池应用于心外膜表面会通过电池释放后断路激发与先前诱导的除极激发或窦性搏动之间的复杂相互作用引发折返。