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Circulatory Dynamics During Pulmonary Vein Isolation Using the Second‐Generation Cryoballoon

BACKGROUND: Circulatory dynamics change during pulmonary vein (PV) isolation using cryoballoons. This study sought to investigate the circulatory dynamics during cryoballoon‐based PV isolation procedures and the contributing factors. METHODS AND RESULTS: This study retrospectively included 35 atrial...

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Autores principales: Kajiyama, Takatsugu, Miyazaki, Shinsuke, Watanabe, Tomonori, Yamao, Kazuya, Kusa, Shigeki, Igarashi, Miyako, Nakamura, Hiroaki, Hachiya, Hitoshi, Iesaka, Yoshito
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5721861/
https://www.ncbi.nlm.nih.gov/pubmed/29018024
http://dx.doi.org/10.1161/JAHA.117.006559
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author Kajiyama, Takatsugu
Miyazaki, Shinsuke
Watanabe, Tomonori
Yamao, Kazuya
Kusa, Shigeki
Igarashi, Miyako
Nakamura, Hiroaki
Hachiya, Hitoshi
Iesaka, Yoshito
author_facet Kajiyama, Takatsugu
Miyazaki, Shinsuke
Watanabe, Tomonori
Yamao, Kazuya
Kusa, Shigeki
Igarashi, Miyako
Nakamura, Hiroaki
Hachiya, Hitoshi
Iesaka, Yoshito
author_sort Kajiyama, Takatsugu
collection PubMed
description BACKGROUND: Circulatory dynamics change during pulmonary vein (PV) isolation using cryoballoons. This study sought to investigate the circulatory dynamics during cryoballoon‐based PV isolation procedures and the contributing factors. METHODS AND RESULTS: This study retrospectively included 35 atrial fibrillation patients who underwent PV isolation with 28‐mm second‐generation cryoballoons and single 3‐minute freeze techniques. Blood pressures were continuously monitored via arterial lines. The left ventricular function was evaluated with intracardiac echocardiography throughout the procedure in 5 additional patients. Overall, 126 cryoapplications without interrupting freezing were analyzed. Systolic blood pressure (SBP) significantly increased during freezing (138.7±28.0 to 148.0±27.2 mm Hg, P<0.001) and sharply dropped (136.3±26.0 to 95.0±17.9 mm Hg, P<0.001) during a mean of 21.0±8.0 seconds after releasing the occlusion during thawing. In the multivariate analyses, the left PVs (P=0.008) and lower baseline SBP (P<0.001) correlated with a larger SBP rise, whereas a higher baseline SBP (P<0.001), left PVs (P=0.017), lower balloon nadir temperature (P=0.027), and female sex (P=0.045) correlated with larger SBP drops. These changes were similarly observed regardless of preprocedural atropine administration and the target PV order. PV occlusions without freezing exhibited no SBP change. PV antrum freezing without occlusions similarly increased the SBP, but the SBP drop was significantly smaller than that with occlusions (P<0.001). The SBP drop time‐course paralleled the left ventricular ejection fraction increase (66.8±8.1% to 79.3±6.7%, P<0.001) and systemic vascular resistance index decrease (2667±1024 to 1937±513 dynes‐sec/cm(2) per m(2), P=0.002). CONCLUSIONS: With second‐generation cryoballoon‐based PV isolation, SBP significantly increased during freezing owing to atrial tissue freezing and dropped sharply after releasing the occlusion, presumably because of the peripheral vascular resistance decrease mainly by circulating chilled blood.
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spelling pubmed-57218612017-12-12 Circulatory Dynamics During Pulmonary Vein Isolation Using the Second‐Generation Cryoballoon Kajiyama, Takatsugu Miyazaki, Shinsuke Watanabe, Tomonori Yamao, Kazuya Kusa, Shigeki Igarashi, Miyako Nakamura, Hiroaki Hachiya, Hitoshi Iesaka, Yoshito J Am Heart Assoc Original Research BACKGROUND: Circulatory dynamics change during pulmonary vein (PV) isolation using cryoballoons. This study sought to investigate the circulatory dynamics during cryoballoon‐based PV isolation procedures and the contributing factors. METHODS AND RESULTS: This study retrospectively included 35 atrial fibrillation patients who underwent PV isolation with 28‐mm second‐generation cryoballoons and single 3‐minute freeze techniques. Blood pressures were continuously monitored via arterial lines. The left ventricular function was evaluated with intracardiac echocardiography throughout the procedure in 5 additional patients. Overall, 126 cryoapplications without interrupting freezing were analyzed. Systolic blood pressure (SBP) significantly increased during freezing (138.7±28.0 to 148.0±27.2 mm Hg, P<0.001) and sharply dropped (136.3±26.0 to 95.0±17.9 mm Hg, P<0.001) during a mean of 21.0±8.0 seconds after releasing the occlusion during thawing. In the multivariate analyses, the left PVs (P=0.008) and lower baseline SBP (P<0.001) correlated with a larger SBP rise, whereas a higher baseline SBP (P<0.001), left PVs (P=0.017), lower balloon nadir temperature (P=0.027), and female sex (P=0.045) correlated with larger SBP drops. These changes were similarly observed regardless of preprocedural atropine administration and the target PV order. PV occlusions without freezing exhibited no SBP change. PV antrum freezing without occlusions similarly increased the SBP, but the SBP drop was significantly smaller than that with occlusions (P<0.001). The SBP drop time‐course paralleled the left ventricular ejection fraction increase (66.8±8.1% to 79.3±6.7%, P<0.001) and systemic vascular resistance index decrease (2667±1024 to 1937±513 dynes‐sec/cm(2) per m(2), P=0.002). CONCLUSIONS: With second‐generation cryoballoon‐based PV isolation, SBP significantly increased during freezing owing to atrial tissue freezing and dropped sharply after releasing the occlusion, presumably because of the peripheral vascular resistance decrease mainly by circulating chilled blood. John Wiley and Sons Inc. 2017-10-10 /pmc/articles/PMC5721861/ /pubmed/29018024 http://dx.doi.org/10.1161/JAHA.117.006559 Text en © 2017 The Authors. Published on behalf of the American Heart Association, Inc., by Wiley. This is an open access article under the terms of the Creative Commons Attribution‐NonCommercial (http://creativecommons.org/licenses/by-nc/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited and is not used for commercial purposes.
spellingShingle Original Research
Kajiyama, Takatsugu
Miyazaki, Shinsuke
Watanabe, Tomonori
Yamao, Kazuya
Kusa, Shigeki
Igarashi, Miyako
Nakamura, Hiroaki
Hachiya, Hitoshi
Iesaka, Yoshito
Circulatory Dynamics During Pulmonary Vein Isolation Using the Second‐Generation Cryoballoon
title Circulatory Dynamics During Pulmonary Vein Isolation Using the Second‐Generation Cryoballoon
title_full Circulatory Dynamics During Pulmonary Vein Isolation Using the Second‐Generation Cryoballoon
title_fullStr Circulatory Dynamics During Pulmonary Vein Isolation Using the Second‐Generation Cryoballoon
title_full_unstemmed Circulatory Dynamics During Pulmonary Vein Isolation Using the Second‐Generation Cryoballoon
title_short Circulatory Dynamics During Pulmonary Vein Isolation Using the Second‐Generation Cryoballoon
title_sort circulatory dynamics during pulmonary vein isolation using the second‐generation cryoballoon
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5721861/
https://www.ncbi.nlm.nih.gov/pubmed/29018024
http://dx.doi.org/10.1161/JAHA.117.006559
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