Cargando…

Integration of 3D nuclear imaging in 3D mapping system for ventricular tachycardia ablation in patients with implanted devices: Perfusion/voltage retrospective assessment of scar location

BACKGROUND: The identification of low-voltage proarrhythmic areas for catheter ablation of scar-mediated ventricular tachycardia (VT) remains challenging. Integration of myocardial perfusion imaging (single-photon emission computed tomography/computed tomography; SPECT/CT) and electroanatomical mapp...

Descripción completa

Detalles Bibliográficos
Autores principales: Thibault, Bernard, Richer, Louis-Philippe, McSpadden, Luke C., Ryu, Kyungmoo, Aguilar, Martin, Cadrin-Tourigny, Julia, Tadros, Rafik, Mondésert, Blandine, Rivard, Léna, Dyrda, Katia, Dubuc, Marc, Macle, Laurent, Talajic, Mario, Khairy, Paul, Guerra, Peter G., Roy, Denis, Grégoire, Jean, Harel, François
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9626736/
https://www.ncbi.nlm.nih.gov/pubmed/36340481
http://dx.doi.org/10.1016/j.hroo.2022.06.008
_version_ 1784822797900447744
author Thibault, Bernard
Richer, Louis-Philippe
McSpadden, Luke C.
Ryu, Kyungmoo
Aguilar, Martin
Cadrin-Tourigny, Julia
Tadros, Rafik
Mondésert, Blandine
Rivard, Léna
Dyrda, Katia
Dubuc, Marc
Macle, Laurent
Talajic, Mario
Khairy, Paul
Guerra, Peter G.
Roy, Denis
Grégoire, Jean
Harel, François
author_facet Thibault, Bernard
Richer, Louis-Philippe
McSpadden, Luke C.
Ryu, Kyungmoo
Aguilar, Martin
Cadrin-Tourigny, Julia
Tadros, Rafik
Mondésert, Blandine
Rivard, Léna
Dyrda, Katia
Dubuc, Marc
Macle, Laurent
Talajic, Mario
Khairy, Paul
Guerra, Peter G.
Roy, Denis
Grégoire, Jean
Harel, François
author_sort Thibault, Bernard
collection PubMed
description BACKGROUND: The identification of low-voltage proarrhythmic areas for catheter ablation of scar-mediated ventricular tachycardia (VT) remains challenging. Integration of myocardial perfusion imaging (single-photon emission computed tomography/computed tomography; SPECT/CT) and electroanatomical mapping (EAM) may improve delineation of the arrhythmogenic substrate. OBJECTIVE: To assess the feasibility of SPECT/CT image integration with voltage maps using the EnSite Precision system (Abbott) in patients undergoing scar-mediated VT ablation. METHODS: Patients underwent SPECT/CT imaging prior to left ventricular (LV) EAM with the EnSite Precision mapping system. The SPECT/CT, EAM data, and ablation lesions were retrospectively co-registered in the EnSite Precision system and exported for analysis. Segmental tissue viability scores were calculated based on SPECT/CT perfusion and electrogram bipolar voltage amplitude. Concordance, specificity, and sensitivity between the 2 modalities as well as the impact of SPECT/CT spatial resolution were evaluated. RESULTS: Twenty subjects (95% male, 67 ± 7 years old, left ventricular ejection fraction 36% ± 11%) underwent EAM and SPECT/CT integration. A concordance of 70% was found between EAM and SPECT/CT for identification of cardiac segments as scar vs viable, with EAM showing a 68.5% sensitivity and 76.4% specificity when using SPECT/CT as a gold standard. Projection on low-resolution 3D geometries led to an average decrease of 38% ± 22% of the voltage points used. CONCLUSION: The study demonstrated the feasibility of integrating SPECT/CT with EAM performed retrospectively for characterization of anatomical substrates during VT ablation procedures.
format Online
Article
Text
id pubmed-9626736
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher Elsevier
record_format MEDLINE/PubMed
spelling pubmed-96267362022-11-03 Integration of 3D nuclear imaging in 3D mapping system for ventricular tachycardia ablation in patients with implanted devices: Perfusion/voltage retrospective assessment of scar location Thibault, Bernard Richer, Louis-Philippe McSpadden, Luke C. Ryu, Kyungmoo Aguilar, Martin Cadrin-Tourigny, Julia Tadros, Rafik Mondésert, Blandine Rivard, Léna Dyrda, Katia Dubuc, Marc Macle, Laurent Talajic, Mario Khairy, Paul Guerra, Peter G. Roy, Denis Grégoire, Jean Harel, François Heart Rhythm O2 Clinical BACKGROUND: The identification of low-voltage proarrhythmic areas for catheter ablation of scar-mediated ventricular tachycardia (VT) remains challenging. Integration of myocardial perfusion imaging (single-photon emission computed tomography/computed tomography; SPECT/CT) and electroanatomical mapping (EAM) may improve delineation of the arrhythmogenic substrate. OBJECTIVE: To assess the feasibility of SPECT/CT image integration with voltage maps using the EnSite Precision system (Abbott) in patients undergoing scar-mediated VT ablation. METHODS: Patients underwent SPECT/CT imaging prior to left ventricular (LV) EAM with the EnSite Precision mapping system. The SPECT/CT, EAM data, and ablation lesions were retrospectively co-registered in the EnSite Precision system and exported for analysis. Segmental tissue viability scores were calculated based on SPECT/CT perfusion and electrogram bipolar voltage amplitude. Concordance, specificity, and sensitivity between the 2 modalities as well as the impact of SPECT/CT spatial resolution were evaluated. RESULTS: Twenty subjects (95% male, 67 ± 7 years old, left ventricular ejection fraction 36% ± 11%) underwent EAM and SPECT/CT integration. A concordance of 70% was found between EAM and SPECT/CT for identification of cardiac segments as scar vs viable, with EAM showing a 68.5% sensitivity and 76.4% specificity when using SPECT/CT as a gold standard. Projection on low-resolution 3D geometries led to an average decrease of 38% ± 22% of the voltage points used. CONCLUSION: The study demonstrated the feasibility of integrating SPECT/CT with EAM performed retrospectively for characterization of anatomical substrates during VT ablation procedures. Elsevier 2022-06-27 /pmc/articles/PMC9626736/ /pubmed/36340481 http://dx.doi.org/10.1016/j.hroo.2022.06.008 Text en © 2022 Heart Rhythm Society. Published by Elsevier Inc. https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Clinical
Thibault, Bernard
Richer, Louis-Philippe
McSpadden, Luke C.
Ryu, Kyungmoo
Aguilar, Martin
Cadrin-Tourigny, Julia
Tadros, Rafik
Mondésert, Blandine
Rivard, Léna
Dyrda, Katia
Dubuc, Marc
Macle, Laurent
Talajic, Mario
Khairy, Paul
Guerra, Peter G.
Roy, Denis
Grégoire, Jean
Harel, François
Integration of 3D nuclear imaging in 3D mapping system for ventricular tachycardia ablation in patients with implanted devices: Perfusion/voltage retrospective assessment of scar location
title Integration of 3D nuclear imaging in 3D mapping system for ventricular tachycardia ablation in patients with implanted devices: Perfusion/voltage retrospective assessment of scar location
title_full Integration of 3D nuclear imaging in 3D mapping system for ventricular tachycardia ablation in patients with implanted devices: Perfusion/voltage retrospective assessment of scar location
title_fullStr Integration of 3D nuclear imaging in 3D mapping system for ventricular tachycardia ablation in patients with implanted devices: Perfusion/voltage retrospective assessment of scar location
title_full_unstemmed Integration of 3D nuclear imaging in 3D mapping system for ventricular tachycardia ablation in patients with implanted devices: Perfusion/voltage retrospective assessment of scar location
title_short Integration of 3D nuclear imaging in 3D mapping system for ventricular tachycardia ablation in patients with implanted devices: Perfusion/voltage retrospective assessment of scar location
title_sort integration of 3d nuclear imaging in 3d mapping system for ventricular tachycardia ablation in patients with implanted devices: perfusion/voltage retrospective assessment of scar location
topic Clinical
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9626736/
https://www.ncbi.nlm.nih.gov/pubmed/36340481
http://dx.doi.org/10.1016/j.hroo.2022.06.008
work_keys_str_mv AT thibaultbernard integrationof3dnuclearimagingin3dmappingsystemforventriculartachycardiaablationinpatientswithimplanteddevicesperfusionvoltageretrospectiveassessmentofscarlocation
AT richerlouisphilippe integrationof3dnuclearimagingin3dmappingsystemforventriculartachycardiaablationinpatientswithimplanteddevicesperfusionvoltageretrospectiveassessmentofscarlocation
AT mcspaddenlukec integrationof3dnuclearimagingin3dmappingsystemforventriculartachycardiaablationinpatientswithimplanteddevicesperfusionvoltageretrospectiveassessmentofscarlocation
AT ryukyungmoo integrationof3dnuclearimagingin3dmappingsystemforventriculartachycardiaablationinpatientswithimplanteddevicesperfusionvoltageretrospectiveassessmentofscarlocation
AT aguilarmartin integrationof3dnuclearimagingin3dmappingsystemforventriculartachycardiaablationinpatientswithimplanteddevicesperfusionvoltageretrospectiveassessmentofscarlocation
AT cadrintourignyjulia integrationof3dnuclearimagingin3dmappingsystemforventriculartachycardiaablationinpatientswithimplanteddevicesperfusionvoltageretrospectiveassessmentofscarlocation
AT tadrosrafik integrationof3dnuclearimagingin3dmappingsystemforventriculartachycardiaablationinpatientswithimplanteddevicesperfusionvoltageretrospectiveassessmentofscarlocation
AT mondesertblandine integrationof3dnuclearimagingin3dmappingsystemforventriculartachycardiaablationinpatientswithimplanteddevicesperfusionvoltageretrospectiveassessmentofscarlocation
AT rivardlena integrationof3dnuclearimagingin3dmappingsystemforventriculartachycardiaablationinpatientswithimplanteddevicesperfusionvoltageretrospectiveassessmentofscarlocation
AT dyrdakatia integrationof3dnuclearimagingin3dmappingsystemforventriculartachycardiaablationinpatientswithimplanteddevicesperfusionvoltageretrospectiveassessmentofscarlocation
AT dubucmarc integrationof3dnuclearimagingin3dmappingsystemforventriculartachycardiaablationinpatientswithimplanteddevicesperfusionvoltageretrospectiveassessmentofscarlocation
AT maclelaurent integrationof3dnuclearimagingin3dmappingsystemforventriculartachycardiaablationinpatientswithimplanteddevicesperfusionvoltageretrospectiveassessmentofscarlocation
AT talajicmario integrationof3dnuclearimagingin3dmappingsystemforventriculartachycardiaablationinpatientswithimplanteddevicesperfusionvoltageretrospectiveassessmentofscarlocation
AT khairypaul integrationof3dnuclearimagingin3dmappingsystemforventriculartachycardiaablationinpatientswithimplanteddevicesperfusionvoltageretrospectiveassessmentofscarlocation
AT guerrapeterg integrationof3dnuclearimagingin3dmappingsystemforventriculartachycardiaablationinpatientswithimplanteddevicesperfusionvoltageretrospectiveassessmentofscarlocation
AT roydenis integrationof3dnuclearimagingin3dmappingsystemforventriculartachycardiaablationinpatientswithimplanteddevicesperfusionvoltageretrospectiveassessmentofscarlocation
AT gregoirejean integrationof3dnuclearimagingin3dmappingsystemforventriculartachycardiaablationinpatientswithimplanteddevicesperfusionvoltageretrospectiveassessmentofscarlocation
AT harelfrancois integrationof3dnuclearimagingin3dmappingsystemforventriculartachycardiaablationinpatientswithimplanteddevicesperfusionvoltageretrospectiveassessmentofscarlocation