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August 31, 2011Science Translational Medicine187 citations

Noninvasive Electroanatomic Mapping of Human Ventricular Arrhythmias with Electrocardiographic Imaging

YWYong WangPCPhillip S. CuculichJZJunjie Zhang

Key Result

Noninvasive electrocardiographic imaging (ECGI) successfully mapped human ventricular tachycardia activation sequences, identifying initiation sites and continuation pathways in individual patients.

Study Design

Type

Observational

Structured PICO

Does electrocardiographic imaging (ECGI) allow for noninvasive mapping of ventricular tachycardia activation sequences and origins in humans?

P
Population
Humans with ventricular arrhythmias (ventricular tachycardia)
I
Intervention
Electrocardiographic imaging (ECGI)
C
Comparator
12-lead electrocardiogram and invasive catheter-applied electrodes
O
Outcome
Mapping of ventricular tachycardia activation sequence, initiation sites, continuation pathways, and relationship to ventricular substratessurrogate

ECGI enables noninvasive, high-resolution mapping of ventricular tachycardia activation sequences and origins, offering a potential tool for personalized arrhythmia management.

Abstract

The rapid heartbeat of ventricular tachycardia (VT) can lead to sudden cardiac death and is a major health issue worldwide. Efforts to identify patients at risk, determine mechanisms of VT, and effectively prevent and treat VT through a mechanism-based approach would all be facilitated by continuous, noninvasive imaging of the arrhythmia over the entire heart. Here, we present noninvasive real-time images of human ventricular arrhythmias using electrocardiographic imaging (ECGI). Our results reveal diverse activation patterns, mechanisms, and sites of initiation of human VT. The spatial resolution of ECGI is superior to that of the routinely used 12-lead electrocardiogram, which provides only global information, and ECGI has distinct advantages over the currently used method of mapping with invasive catheter-applied electrodes. The spatial resolution of this method and its ability to image electrical activation sequences over the entire ventricular surfaces in a single heartbeat allowed us to determine VT initiation sites and continuation pathways, as well as VT relationships to ventricular substrates, including anatomical scars and abnormal electrophysiological substrate. Thus, ECGI can map the VT activation sequence and identify the location and depth of VT origin in individual patients, allowing personalized treatment of patients with ventricular arrhythmias.

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Cite This Study

Wang et al. (2011) conducted an observational in Ventricular arrhythmias. Electrocardiographic imaging (ECGI) vs. 12-lead electrocardiogram and invasive catheter mapping was evaluated on Mapping of VT activation sequence and identification of VT origin. Noninvasive electrocardiographic imaging (ECGI) successfully mapped human ventricular tachycardia activation sequences, identifying initiation sites and continuation pathways in individual patients.

synapsesocial.com/papers/6a0edf81aa1655e5fb22ee45https://doi.org/10.1126/scitranslmed.3002152
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