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Virk K, Stecker E, Balaji S. Cryoablation to improve catheter stability and ablation success in the right atrioventricular groove. Indian Pacing Electrophysiol J 2021; 21:269-272. [PMID: 34246758 PMCID: PMC8414315 DOI: 10.1016/j.ipej.2021.07.001] [Citation(s) in RCA: 1] [Impact Index Per Article: 0.3] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 05/24/2021] [Revised: 06/30/2021] [Accepted: 07/07/2021] [Indexed: 11/21/2022] Open
Abstract
Catheter instability can limit ablation success of arrhythmia substrates at the right atrioventricular groove. We describe cases where cryoablation improved catheter stability, enabling ablation success. Methods and results Four patients with supraventricular tachycardia (SVT) substrates at the right atrioventricular groove had radiofrequency ablation procedures limited by poor catheter contact. Cryoablation offered improved catheter stability, and all four patients achieved acute ablation success using cryoablation. Three patients had long-term success and one patient later required repeat radiofrequency ablation. Conclusions For patients with arrhythmia substrates at the right atrioventricular groove, cryoablation may be a useful adjunctive technique in cases with catheter instability.
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Affiliation(s)
- Kathryn Virk
- Department of Pediatrics, Oregon Health & Science University, Portland, OR, 97239, USA
| | - Eric Stecker
- Knight Cardiovascular Institute, Oregon Health & Science University, Portland, OR, 97239, USA
| | - Seshadri Balaji
- Department of Pediatrics, Oregon Health & Science University, Portland, OR, 97239, USA.
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Castro N, Ribeiro S, Fernandes MM, Ribeiro C, Cardoso V, Correia V, Minguez R, Lanceros‐Mendez S. Physically Active Bioreactors for Tissue Engineering Applications. ACTA ACUST UNITED AC 2020; 4:e2000125. [DOI: 10.1002/adbi.202000125] [Citation(s) in RCA: 18] [Impact Index Per Article: 3.6] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 05/08/2020] [Revised: 07/15/2020] [Indexed: 01/09/2023]
Affiliation(s)
- N. Castro
- BCMaterials, Basque Centre for Materials, Applications and Nanostructures University of the Basque Country UPV/EHU Science Park Leioa E‐48940 Spain
| | - S. Ribeiro
- Physics Centre University of Minho Campus de Gualtar Braga 4710‐057 Portugal
- Centre of Molecular and Environmental Biology (CBMA) University of Minho Campus de Gualtar Braga 4710‐057 Portugal
| | - M. M. Fernandes
- Physics Centre University of Minho Campus de Gualtar Braga 4710‐057 Portugal
- CEB – Centre of Biological Engineering University of Minho Braga 4710‐057 Portugal
| | - C. Ribeiro
- Physics Centre University of Minho Campus de Gualtar Braga 4710‐057 Portugal
- CEB – Centre of Biological Engineering University of Minho Braga 4710‐057 Portugal
| | - V. Cardoso
- CMEMS‐UMinho Universidade do Minho Campus de Azurém Guimarães 4800‐058 Portugal
| | - V. Correia
- Algoritmi Research Centre University of Minho Campus de Azurém Guimarães 4800‐058 Portugal
| | - R. Minguez
- Department of Graphic Design and Engineering Projects University of the Basque Country UPV/EHU Bilbao E‐48013 Spain
| | - S. Lanceros‐Mendez
- BCMaterials, Basque Centre for Materials, Applications and Nanostructures University of the Basque Country UPV/EHU Science Park Leioa E‐48940 Spain
- IKERBASQUE Basque Foundation for Science Bilbao E‐48013 Spain
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Bassil G, Markowitz SM, Liu CF, Thomas G, Ip JE, Lerman BB, Cheung JW. Robotics for catheter ablation of cardiac arrhythmias: Current technologies and practical approaches. J Cardiovasc Electrophysiol 2020; 31:739-752. [DOI: 10.1111/jce.14380] [Citation(s) in RCA: 13] [Impact Index Per Article: 2.6] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Submit a Manuscript] [Subscribe] [Scholar Register] [Received: 11/20/2019] [Revised: 01/24/2020] [Accepted: 02/01/2020] [Indexed: 11/28/2022]
Affiliation(s)
- Guillaume Bassil
- Division of Cardiology, Department of Medicine, New York Presbyterian HospitalWeill Cornell Medical College New York New York
| | - Steven M. Markowitz
- Division of Cardiology, Department of Medicine, New York Presbyterian HospitalWeill Cornell Medical College New York New York
| | - Christopher F. Liu
- Division of Cardiology, Department of Medicine, New York Presbyterian HospitalWeill Cornell Medical College New York New York
| | - George Thomas
- Division of Cardiology, Department of Medicine, New York Presbyterian HospitalWeill Cornell Medical College New York New York
| | - James E. Ip
- Division of Cardiology, Department of Medicine, New York Presbyterian HospitalWeill Cornell Medical College New York New York
| | - Bruce B. Lerman
- Division of Cardiology, Department of Medicine, New York Presbyterian HospitalWeill Cornell Medical College New York New York
| | - Jim W. Cheung
- Division of Cardiology, Department of Medicine, New York Presbyterian HospitalWeill Cornell Medical College New York New York
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Barua R, Giria H, Datta S, Roy Chowdhury A, Datta P. Force modeling to develop a novel method for fabrication of hollow channels inside a gel structure. Proc Inst Mech Eng H 2019; 234:223-231. [PMID: 31774361 DOI: 10.1177/0954411919891654] [Citation(s) in RCA: 9] [Impact Index Per Article: 1.5] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/17/2022]
Abstract
Fabrication of hollow channels with user-defined dimensions and patterns inside viscoelastic, gel-type materials is required for several applications, especially in biomedical engineering domain. These include objectives of obtaining vascularized tissues and enclosed or subsurface microfluidic devices. However, presently there is no suitable manufacturing technology that can create such channels and networks in a gel structure. The advent of three-dimensional bioprinting has opened new possibilities for fabricating structures with complex geometries. However, application of this technique to fabricate internal hollow channels in viscoelastic material has not been yet explored to a great extent. In this article, we present the theoretical modeling/background of a proposed manufacturing paradigm through which hollow channels can be conveniently fabricated inside a gel structure. We propose that a tip connected to a robotic arm can be moved in X-, Y-, and Z-axis as per the desired design. The tip can be moved by a magnet or mechanical force. If the tip is further trailed with porous tube and moved inside the viscoelastic material, corresponding internal channels can be fabricated. To achieve this, however, force modeling to understand the forces that will be required to move the tip inside viscoelastic material should be known and understood. Therefore, in our first attempt, we developed the computational force modeling of the tip movement inside gels with different viscoelastic properties to create the channels.
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Affiliation(s)
- Ranjit Barua
- Centre for Healthcare Science and Technology, Indian Institute of Engineering Science and Technology, Shibpur, Howrah, India
| | - Himanshu Giria
- Department of Aerospace Engineering and Applied Mechanics, Indian Institute of Engineering Science and Technology, Shibpur, Howrah, India
| | - Sudipto Datta
- Centre for Healthcare Science and Technology, Indian Institute of Engineering Science and Technology, Shibpur, Howrah, India
| | - Amit Roy Chowdhury
- Centre for Healthcare Science and Technology, Indian Institute of Engineering Science and Technology, Shibpur, Howrah, India.,Department of Aerospace Engineering and Applied Mechanics, Indian Institute of Engineering Science and Technology, Shibpur, Howrah, India
| | - Pallab Datta
- Centre for Healthcare Science and Technology, Indian Institute of Engineering Science and Technology, Shibpur, Howrah, India
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Jez J, Jadczyk T, Lehar F, Pesl M, Kulik T, Belaskova S, Soucek F, Caluori G, Wojakowski W, Starek Z. Comparison of atrial fibrillation ablation efficacy using remote magnetic navigation vs. manual navigation with contact-force control. Biomed Pap Med Fac Univ Palacky Olomouc Czech Repub 2019; 164:387-393. [PMID: 31645769 DOI: 10.5507/bp.2019.045] [Citation(s) in RCA: 2] [Impact Index Per Article: 0.3] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 05/20/2019] [Accepted: 09/04/2019] [Indexed: 11/23/2022] Open
Abstract
AIMS This study aims to compare procedural parameters and clinical efficacy of remote magnetic navigation (RMN) vs. manual navigation (MAN) approach for radiofrequency ablation (RFA) in patients with atrial fibrillation (AF). METHODS 146 patients with AF were enrolled in the study. In the RMN group (n=57), patients were treated with the CARTO® 3 in combination with the Niobe ES system. In the MAN group (n=89), ablation was performed with the EnSite Velocity and TactiCath™ Quartz catheter with direct contact force measurement. Procedural time, ablation time, fluoroscopy time, radiation dose and ablation counts were measured and compared between the groups. Recurrence of AF was evaluated after 6 months of follow-up. RESULTS Mean procedure times (236.87±64.31 vs. 147.22±45.19 min, P<0.05), counts of RF applications (74.30±24.77 vs. 49.15±20.33, P<0.05) and total RFA times (4323.39±1426.69 vs. 2780.53±1157.85 s, P<0.05) were all significantly higher in the RMN than in the MAN group, respectively. In the same order, mean X-ray dose (9722.6±7507.4 vs. 8087.9±6051.5 mGy/cm2, P=0.12) and mean total X-ray exposure time (8.07±4.20 vs. 9.54±5.47 min, P=0.08) were not statistically different. At 6-month follow-up, freedom from AF was similar in RMN and MAN group for paroxysmal (60.8% and 73%, respectively, P=0.42) and persistent AF (69.6% and 75.0%, respectively, P=0.77). CONCLUSIONS Due to the fact that mid-term clinical outcomes showed no significant differences in AF recurrences between groups and manual ablation strategy provided more favorable results regarding acute procedural parameters, we can conclude that the remote magnetic navigation is not superior to the manual approach.
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Affiliation(s)
- Jiri Jez
- International Clinical Research Center, Interventional Cardiac Electrophysiology, St. Anne's University Hospital Brno, Czech Republic.,Department of Cardiovascular Diseases, Faculty of Medicine, Masaryk University, Brno, Czech Republic
| | - Tomasz Jadczyk
- International Clinical Research Center, Interventional Cardiac Electrophysiology, St. Anne's University Hospital Brno, Czech Republic.,Department of Cardiology and Structural Heart Diseases, Medical University of Silesia, Katowice, Poland
| | - Frantisek Lehar
- International Clinical Research Center, Interventional Cardiac Electrophysiology, St. Anne's University Hospital Brno, Czech Republic.,Department of Cardiovascular Diseases, Faculty of Medicine, Masaryk University, Brno, Czech Republic
| | - Martin Pesl
- International Clinical Research Center, Interventional Cardiac Electrophysiology, St. Anne's University Hospital Brno, Czech Republic.,Department of Cardiovascular Diseases, Faculty of Medicine, Masaryk University, Brno, Czech Republic.,Department of Biology, Faculty of Medicine, Masaryk University, Brno, Czech Republic
| | - Tomas Kulik
- International Clinical Research Center, Interventional Cardiac Electrophysiology, St. Anne's University Hospital Brno, Czech Republic
| | - Silvie Belaskova
- Biostatistics, International Clinical Research Center, St. Anne's University Hospital Brno, Brno, Czech Republic
| | - Filip Soucek
- International Clinical Research Center, Interventional Cardiac Electrophysiology, St. Anne's University Hospital Brno, Czech Republic
| | - Guido Caluori
- International Clinical Research Center, Interventional Cardiac Electrophysiology, St. Anne's University Hospital Brno, Czech Republic.,CEITEC, Masaryk University, Brno, Czech Republic
| | - Wojciech Wojakowski
- Department of Cardiology and Structural Heart Diseases, Medical University of Silesia, Katowice, Poland
| | - Zdenek Starek
- International Clinical Research Center, Interventional Cardiac Electrophysiology, St. Anne's University Hospital Brno, Czech Republic.,Department of Cardiovascular Diseases, Faculty of Medicine, Masaryk University, Brno, Czech Republic
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Abstract
Several remote catheter navigation systems have been developed and are now commercially available. However, these systems typically require specialized catheters or equipment, as well as time-consuming operations for the system set-up. In this paper, we present CathROB, a highly compact and versatile robotic system for remote navigation of standard tip-steerable electrophysiology (EP) catheters. Key features of CathROB include an extremely compact design that minimizes encumbrance and time for system set-up in a standard cath lab, a force-sensing mechanism, an intuitive command interface, and functions for automatic catheter navigation and repositioning. We report in vitro and in vivo animal evaluation of CathROB. In vitro results showed good accuracy in remote catheter navigation and automatic repositioning (1.5 ± 0.6 mm for the left-side targets, 1.7 ± 0.4 mm for the right-side targets). Adequate tissue contact was achieved with remote navigation in vivo. There were no adverse events, including absence of cardiac perforation or cardiac damage, indicative of the safety profile of CathROB. Although further preclinical and clinical studies are required, the presented CathROB system seems to be a promising solution for an affordable and easy-to-use remote catheter navigation.
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