Automated isochronal late activation mapping to identify deceleration zones: Rationale and methodology of a practical electroanatomic mapping approach for ventricular tachycardia ablation

被引:42
作者
Raiman, Michael [2 ]
Tung, Roderick [1 ]
机构
[1] Univ Chicago Med, Ctr Arrhythmia Care, Heart & Vasc Ctr, Pritzker Sch Med, Chicago, IL USA
[2] Abbott Labs, Abbott Pk, IL 60064 USA
关键词
Ventricular tachycardia; Ablation; Electroanatomic mapping; Arrhythmias; Cardiac electrophysiology; Cardiac mapping; Conduction velocity; SINUS RHYTHM; CONDUCTION; MECHANISM; OBSTACLE; HEART; MODEL;
D O I
10.1016/j.compbiomed.2018.07.012
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Sinus rhythm surrogates for critical isthmus sites are highly desirable because the vast majority of VT is hemodynamically unstable. While many ablation strategies to decrease the arrhythmogenicity of scar have been shown to be effective, the predominant method for electroanatomic mapping relies on a voltage-based depiction of scar and abnormal electrograms. A functional prioritization of slow conduction, distinct from late activation, is feasible in clinical practice with the creation of isochronal late activation maps. Regions of slow conduction are easily visualized with isochronal displays of baseline intrinsic rhythm activation and deceleration zones, where isochrones crowd, have been observed to have strong correlation with successful ablation sites. Automated annotation of the offset of local electrograms was developed to create the propagation maps to incorporate electrogram width and completion of local activation. Simple conduction velocity estimates where three isochrones are seen within a 1 cm radium confirm that deceleration zones harbor conduction velocity of < 0.6 m/s. We present a practical methodology of analyzing electroanatomic substrate in a voltage-independent manner with correlation to reentrant VT. Non-linear 3D transmyocardial conduction limits the validity of conduction velocity estimates that assume planar and tangential conduction and we show an example of a patient with 3D isthmus boundaries with an activation gap on the epicardial surface during tachycardia.
引用
收藏
页码:336 / 340
页数:5
相关论文
共 12 条
[1]   CIRCUS MOVEMENT IN RABBIT ATRIAL MUSCLE AS A MECHANISM OF TACHYCARDIA .3. LEADING CIRCLE CONCEPT - NEW MODEL OF CIRCUS MOVEMENT IN CARDIAC TISSUE WITHOUT INVOLVEMENT OF AN ANATOMICAL OBSTACLE [J].
ALLESSIE, MA ;
BONKE, FIM ;
SCHOPMAN, FJG .
CIRCULATION RESEARCH, 1977, 41 (01) :9-18
[2]   REENTRANT EXCITATION AROUND A FIXED OBSTACLE IN UNIFORM ANISOTROPIC VENTRICULAR MYOCARDIUM [J].
BRUGADA, J ;
BOERSMA, L ;
KIRCHHOF, CJH ;
HEYNEN, VVT ;
ALLESSIE, MA .
CIRCULATION, 1991, 84 (03) :1296-1306
[3]   Electroanatomic left ventricular mapping in the porcine model of healed anterior myocardial infarction - Correlation with intracardiac echocardiography and pathological analysis [J].
Callans, DJ ;
Ren, JF ;
Michele, J ;
Marchlinski, FE ;
Dillon, SM .
CIRCULATION, 1999, 100 (16) :1744-1750
[4]   Techniques for automated local activation time annotation and conduction velocity estimation in cardiac mapping [J].
Cantwell, C. D. ;
Roney, C. H. ;
Ng, F. S. ;
Siggers, J. H. ;
Sherwin, S. J. ;
Peters, N. S. .
COMPUTERS IN BIOLOGY AND MEDICINE, 2015, 65 :229-242
[5]   Localization of the isthmus in reentrant circuits by analysis of electrograms derived from clinical noncontact mapping during sinus rhythm and ventricular tachycardia [J].
Ciaccio, EJ ;
Chow, AW ;
Davies, W ;
Wit, AL ;
Peters, NS .
JOURNAL OF CARDIOVASCULAR ELECTROPHYSIOLOGY, 2004, 15 (01) :27-36
[6]  
Ciaccio EJ, 2016, CIRC ARRHYTHM ELECTR, V9
[7]   SLOW CONDUCTION IN THE INFARCTED HUMAN HEART - ZIGZAG COURSE OF ACTIVATION [J].
DEBAKKER, JMT ;
VANCAPELLE, FJL ;
JANSE, MJ ;
TASSERON, S ;
VERMEULEN, JT ;
DEJONGE, N ;
LAHPOR, JR .
CIRCULATION, 1993, 88 (03) :915-926
[8]   Relationship Between Sinus Rhythm Late Activation Zones and Critical Sites for Scar-Related Ventricular Tachycardia Systematic Analysis of Isochronal Late Activation Mapping [J].
Irie, Tadanobu ;
Yu, Ricky ;
Bradfield, Jason S. ;
Vaseghi, Marmar ;
Buch, Eric F. ;
Ajijola, Olujimi ;
Macias, Carlos ;
Fujimura, Osamu ;
Mandapati, Ravi ;
Boyle, Noel G. ;
Shivkumar, Kalyanam ;
Tung, Roderick .
Circulation-Arrhythmia and Electrophysiology, 2015, 8 (02) :390-399
[9]   Elimination of Local Abnormal Ventricular Activities A New End Point for Substrate Modification in Patients With Scar-Related Ventricular Tachycardia [J].
Jais, Pierre ;
Maury, Philippe ;
Khairy, Paul ;
Sacher, Frederic ;
Nault, Isabelle ;
Komatsu, Yuki ;
Hocini, Meleze ;
Forclaz, Andrei ;
Jadidi, Amir S. ;
Weerasooryia, Rukshen ;
Shah, Ashok ;
Derval, Nicolas ;
Cochet, Hubert ;
Knecht, Sebastien ;
Miyazaki, Shinsuke ;
Linton, Nick ;
Rivard, Lena ;
Wright, Matthew ;
Wilton, Stephen B. ;
Scherr, Daniel ;
Pascale, Patrizio ;
Roten, Laurent ;
Pederson, Michala ;
Bordachar, Pierre ;
Laurent, Francois ;
Kim, Steven J. ;
Ritter, Philippe ;
Clementy, Jacques ;
Haissaguerre, Michel .
CIRCULATION, 2012, 125 (18) :2184-2196
[10]   Application of Ripple Mapping with an Electroanatomic Mapping System for Diagnosis of Atrial Tachycardias [J].
Jamil-Copley, Shahnaz ;
Linton, Nick ;
Koa-Wing, Michael ;
Kojodjojo, Pipin ;
Lim, Phang Boon ;
Malcolme-Lawes, Louisa ;
Whinnett, Zachary ;
Wright, Ian ;
Davies, Wyn ;
Peters, Nicholas ;
Francis, Darrel P. ;
Kanagaratnam, Prapa .
JOURNAL OF CARDIOVASCULAR ELECTROPHYSIOLOGY, 2013, 24 (12) :1361-1369