Comparison of the lesion formation and safety in ex vivo porcine heart study: using ThermoCool SmartTouch and ThermoCool SmartTouch‐SF catheters

Author(s):  
Min Guo ◽  
Lijuan Qu ◽  
Nan Zhang ◽  
Rui Yan ◽  
Zheng Xue ◽  
...  
2020 ◽  
Vol 13 (6) ◽  
pp. 965-969
Author(s):  
Shu-Tao Huang ◽  
Jian-Zeng Dong ◽  
Xin Du ◽  
Jia-Hui Wu ◽  
Rong-Hui Yu ◽  
...  

2017 ◽  
Vol 11 (2) ◽  
pp. 141-147 ◽  
Author(s):  
Gert Jan Pelgrim ◽  
Taylor M. Duguay ◽  
J. Marco A. Stijnen ◽  
Akos Varga-Szemes ◽  
Sjoerd Van Tuijl ◽  
...  

2019 ◽  
Vol 40 (Supplement_1) ◽  
Author(s):  
D Maselli ◽  
R D Johnson ◽  
R Szilveszter Matos ◽  
C Chiappini ◽  
P Camelliti ◽  
...  

Abstract Background The epicardium, the most external layer of the heart, is composed of a layer of epithelial cells and underlying connective tissue. Following myocardial infarction, epicardial cells are activated and provide a source of paracrine factors and progenitor cells. In the border zone of the ischaemic tissue, the activated epicardial cells support cardiac and vascular regeneration by releasing pro-angiogenic and pro-survival factors, and by differentiating towards multiple cell lineages. During this process, activated epicardial cells migrate to the site of injury where they contribute to both post-ischemic remodelling and fibrosis. There is limited knowledge of the cellular and molecular regulation of these processes in large animals and humans, in part due to the lack of robust and representative models. Purpose In this project, we developed an ex vivo 3D organotypic model derived from porcine hearts, amenable to culture, which enables structural, molecular and cellular studies of the epicardium. Methods Thin epicardial/cardiac tissue slices (EpCardio-TS) were obtained by using a vibratome to cut the first layer of tissue from the epicardial side of porcine heart cubes. Slices were cultured for up to 72h in a bioreactor that uses a 3D printed chamber connected to a control system that allows maintenance and adjustment of culture conditions, and ensures continuous media flow. Local intracellular delivery of fluorescent quantum-dots (Qdots) was performed using nanoneedle chips to track epicardial cells, whilst cell fate is visualised in 3D by performing immunofluorescence on decolourised slices. Results Intact EpCardio-TS obtained from porcine heart included a viable epicardium, expressing typical epicardial markers (wt-1, mesothelin, uroplakin), and an electrically active myocardium. Live/dead staining showed epicardial (67.8±16.2%, N=5) and myocardial (40.8±28.6%, N=3) viability, and TUNEL assay confirmed low levels of apoptosis (6.3±5.1% of wt-1+ epicardial cells N=1). Moreover, the presence of proliferating epicardial cells (PCNA+), the increase in wt-1+ cells, and the increase in epicardial gene expression (Tbx18 and TCF21) suggested that cells maintain their progenitor phenotype and undergo activation in culture. Nanoinjection of fluorescent Qdots to EpCardio-TS localized them to the wt-1+ cells on the slice surface, presenting a strategy to mark the epicardial layer. This, combined with the successful decolourisation of the slices, provides an in vitro platform to track the role of epicardial cells in cardiac remodelling and fibrosis. Conclusions EpCardio-TS represents a robust ex vivo model merging the complexity of a 3D organotypic culture with the simplicity of the in vitro culture. EpCardio-TS are amenable to culture and cell tracking, and can therefore find application in toxicology and gene therapy screening for the modulation of epicardial interactions with myocardial and non-myocardial cells of the heart.


2019 ◽  
Vol 3 (3) ◽  
pp. 211-219 ◽  
Author(s):  
Michal Jaworek ◽  
Guido Gelpi ◽  
Claudia Romagnoni ◽  
Federico Lucherini ◽  
Monica Contino ◽  
...  

1996 ◽  
Vol 61 (6) ◽  
pp. 862-868 ◽  
Author(s):  
Simon C. Robson ◽  
Vincent K. Young ◽  
Nigel S. Cook ◽  
Rainer Metternich ◽  
Walter Kasper-Konig ◽  
...  

2021 ◽  
Vol 11 (1) ◽  
Author(s):  
Soo Young Park ◽  
Rajinder Singh-Moon ◽  
Haiqiu Yang ◽  
Deepak Saluja ◽  
Christine Hendon

AbstractThere are currently limited means by which lesion formation can be confirmed during radiofrequency ablation procedures. The purpose of this study was to evaluate the use of NIRS-integrated RFA catheters for monitoring irrigated lesion progression, ex vivo and in vivo. Open-irrigated NIRS-ablation catheters with optical fibers were fabricated to sample tissue diffuse reflectance. Spectra from 44 irrigated lesions and 44 non-lesion sites from ex vivo swine hearts (n = 15) were used to train and evaluate a predictive model for lesion dimensions based on key spectral features. Additional studies were performed in diluted blood to assess NIRS signatures of catheter-tissue contact status. Finally, the potential of NIRS-RFA catheters for guiding lesion delivery was evaluated in a set of in vivo pilot studies conducted in healthy pigs (n = 4). Model predictions for lesion depth (R = 0.968), width (R = 0.971), and depth percentage (R = 0.924) correlated well with measured lesion dimensions. In vivo deployment in preliminary trials showed robust translational consistency of contact discrimination (P < 0.0001) and lesion depth parameters (< 3% error). NIRS empowered catheters are well suited for monitoring myocardial response to RF ablation and may provide useful intraprocedural feedback for optimizing treatment efficacy alongside current practices.


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