Literature DB >> 29246829

Hyperspectral imaging for label-free in vivo identification of myocardial scars and sites of radiofrequency ablation lesions.

Luther M Swift1, Huda Asfour1, Narine Muselimyan1, Cinnamon Larson2, Kenneth Armstrong2, Narine A Sarvazyan3.   

Abstract

BACKGROUND: Treatment of cardiac arrhythmias often involves ablating viable muscle tissue within or near islands of scarred myocardium. Yet, today there are limited means by which the boundaries of such scars can be visualized during surgery and distinguished from the sites of acute injury caused by radiofrequency (RF) ablation.
OBJECTIVE: We sought to explore a hyperspectral imaging (HSI) methodology to delineate and distinguish scar tissue from tissue injury caused by RF ablation.
METHODS: RF ablation of the ventricular surface of live rats that underwent thoracotomy was followed by a 2-month animal recovery period. During a second surgery, new RF lesions were placed next to the scarred tissue from the previous ablation procedure. The myocardial infarction model was used as an alternative way to create scar tissue.
RESULTS: Excitation-emission matrices acquired from the sites of RF lesions, scar region, and the surrounding unablated tissue revealed multiple spectral changes. These findings justified HSI of the heart surface using illumination with 365 nm UV light while acquiring spectral images within the visible range. Autofluorescence-based HSI enabled to distinguish sites of RF lesions from scar or unablated myocardium in open-chest rats. A pilot version of a percutaneous HSI catheter was used to demonstrate the feasibility of RF lesion visualization in atrial tissue of live pigs.
CONCLUSION: HSI based on changes in tissue autofluorescence is a highly effective tool for revealing-in vivo and with high spatial resolution-surface boundaries of myocardial scar and discriminating it from areas of acute necrosis caused by RF ablation.
Copyright © 2017 The Authors. Published by Elsevier Inc. All rights reserved.

Entities:  

Keywords:  Ablation; Hyperspectral imaging; Myocardium; Scar

Mesh:

Year:  2017        PMID: 29246829      PMCID: PMC5879007          DOI: 10.1016/j.hrthm.2017.12.014

Source DB:  PubMed          Journal:  Heart Rhythm        ISSN: 1547-5271            Impact factor:   6.343


  26 in total

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Authors:  Iftikhar Ahmad; Adam Gribble; Masroor Ikram; Mihaela Pop; Alex Vitkin
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4.  Visualization of epicardial cryoablation lesions using endogenous tissue fluorescence.

Authors:  Luther Swift; Daniel A B Gil; Rafael Jaimes; Matthew Kay; Marco Mercader; Narine Sarvazyan
Journal:  Circ Arrhythm Electrophysiol       Date:  2014-08-20

5.  Combined endocardial and epicardial catheter ablation in arrhythmogenic right ventricular dysplasia incorporating scar dechanneling technique.

Authors:  Antonio Berruezo; Juan Fernández-Armenta; Lluís Mont; Hrvojka Zeljko; David Andreu; Csaba Herczku; Tim Boussy; Jose María Tolosana; Elena Arbelo; Josep Brugada
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6.  Pulmonary Vein Isolation Using the Visually Guided Laser Balloon: A Prospective, Multicenter, and Randomized Comparison to Standard Radiofrequency Ablation.

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Journal:  Heart Rhythm       Date:  2008-06-10       Impact factor: 6.343

Review 10.  Principles and techniques of imaging in identifying the substrate of ventricular arrhythmia.

Authors:  Mischa T Rijnierse; Cornelis P Allaart; Paul Knaapen
Journal:  J Nucl Cardiol       Date:  2015-12-14       Impact factor: 5.952

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  10 in total

Review 1.  A Percutaneous Catheter for In Vivo Hyperspectral Imaging of Cardiac Tissue: Challenges, Solutions and Future Directions.

Authors:  Kenneth Armstrong; Cinnamon Larson; Huda Asfour; Terry Ransbury; Narine Sarvazyan
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2.  Optimization of wavelength selection for multispectral image acquisition: a case study of atrial ablation lesions.

Authors:  Huda Asfour; Shuyue Guan; Narine Muselimyan; Luther Swift; Murray Loew; Narine Sarvazyan
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3.  Application of unsupervised learning to hyperspectral imaging of cardiac ablation lesions.

Authors:  Shuyue Guan; Huda Asfour; Narine Sarvazyan; Murray Loew
Journal:  J Med Imaging (Bellingham)       Date:  2018-12-15

4.  Real-time optical spectroscopic monitoring of nonirrigated lesion progression within atrial and ventricular tissues.

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5.  Monitoring of irrigated lesion formation with single fiber based multispectral system using machine learning.

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6.  Hyperspectral Imagery for Assessing Laser-Induced Thermal State Change in Liver.

Authors:  Martina De Landro; Ignacio Espíritu García-Molina; Manuel Barberio; Eric Felli; Vincent Agnus; Margherita Pizzicannella; Michele Diana; Emanuele Zappa; Paola Saccomandi
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7.  Analysis of muscle tissue in vivo using fiber-optic autofluorescence and diffuse reflectance spectroscopy.

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8.  Quantification of irrigated lesion morphology using near-infrared spectroscopy.

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9.  Key factors behind autofluorescence changes caused by ablation of cardiac tissue.

Authors:  Narine Muselimyan; Huda Asfour; Narine Sarvazyan
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10.  Autofluorescence properties of balloon polymers used in medical applications.

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  10 in total

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