Literature DB >> 15795794

Intravascular electric impedance spectroscopy of atherosclerotic lesions using a new impedance catheter system.

T Süselbeck1, H Thielecke, J Köchlin, S Cho, I Weinschenk, J Metz, M Borggrefe, K K Haase.   

Abstract

Newer techniques are required to identify atherosclerotic lesions that are prone to rupture. Electric impedance spectroscopy (EIS) can characterize biological tissues by measuring the electrical impedance over a frequency range. We tested a newly designed intravascular impedance catheter (IC) by measuring the impedance of different stages of atherosclerosis induced in an animal rabbit model. Six female New Zealand White rabbits were fed for 17 weeks with a 5% cholesterol-enriched diet to induce early forms of atherosclerotic plaques. All aortas were prepared from the aortic arch to the renal arteries and segments of 5-10 mm were marked by ink spots. A balloon catheter system with an integrated polyimide-based microelectrode structure was introduced into the aorta and the impedance was measured at each spot by using an impedance analyzer. The impedance was measured at frequencies of 1 kHz and 10 kHz and compared with the corresponding histomorphometric data of each aortic segment.Forty-four aortic segments without plaques and 48 segments with evolving atherosclerotic lesions could be exactly matched by the histomorphometric analysis. In normal aortic segments (P0) the change of the magnitude of impedance at 1 kHz and at 10 kHz (|Z|(1 kHz) - |Z|(10 kHz), = ICF) was 208.5 +/- 357.6 Omega. In the area of aortic segments with a plaque smaller than that of the aortic wall diameter (PI), the ICF was 137.7 +/- 192.8 Omega. (P 0 vs. P I; p = 0.52), whereas in aortic segments with plaque formations larger than the aortic wall (PII) the ICF was significantly lower -22.2 +/- 259.9 Omega. (P0 vs. PII; p = 0.002). Intravascular EIS could be successfully performed by using a newly designed microelectrode integrated onto a conventional coronary balloon catheter. In this experimental animal model atherosclerotic aortic lesions showed significantly higher ICF in comparison to the normal aortic tissue.

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Year:  2005        PMID: 15795794     DOI: 10.1007/s00395-005-0527-6

Source DB:  PubMed          Journal:  Basic Res Cardiol        ISSN: 0300-8428            Impact factor:   17.165


  11 in total

1.  Electrochemical impedance spectroscopy to characterize inflammatory atherosclerotic plaques.

Authors:  Fei Yu; Xiaohu Dai; Tyler Beebe; Tzung Hsiai
Journal:  Biosens Bioelectron       Date:  2011-09-16       Impact factor: 10.618

2.  Stretchable electrochemical impedance sensors for intravascular detection of lipid-rich lesions in New Zealand White rabbits.

Authors:  Hung Cao; Fei Yu; Yu Zhao; Nick Scianmarello; Juhyun Lee; Wangde Dai; Nelson Jen; Tyler Beebe; Rongsong Li; Ramin Ebrahimi; Donald S Chang; Freny V Mody; John Pacella; Yu-Chong Tai; Tzung Hsiai
Journal:  Biosens Bioelectron       Date:  2013-12-01       Impact factor: 10.618

3.  Electrochemical impedance spectroscopy to assess vascular oxidative stress.

Authors:  Fei Yu; Rongsong Li; Lisong Ai; Collin Edington; Hongyu Yu; Mark Barr; E S Kim; Tzung K Hsiai
Journal:  Ann Biomed Eng       Date:  2010-07-23       Impact factor: 3.934

4.  Two-Point Stretchable Electrode Array for Endoluminal Electrochemical Impedance Spectroscopy Measurements of Lipid-Laden Atherosclerotic Plaques.

Authors:  René R Sevag Packard; XiaoXiao Zhang; Yuan Luo; Teng Ma; Nelson Jen; Jianguo Ma; Linda L Demer; Qifa Zhou; James W Sayre; Rongsong Li; Yu-Chong Tai; Tzung K Hsiai
Journal:  Ann Biomed Eng       Date:  2016-02-08       Impact factor: 3.934

5.  Elevated electrochemical impedance in the endoluminal regions with high shear stress: implication for assessing lipid-rich atherosclerotic lesions.

Authors:  Fei Yu; Juhyun Lee; Nelson Jen; Xiang Li; Qian Zhang; Rui Tang; Qifa Zhou; Eun S Kim; Tzung K Hsiai
Journal:  Biosens Bioelectron       Date:  2012-12-20       Impact factor: 10.618

6.  Electrical Impedance Spectroscopy Study of Biological Tissues.

Authors:  D A Dean; T Ramanathan; D Machado; R Sundararajan
Journal:  J Electrostat       Date:  2008-03       Impact factor: 1.775

7.  Determining tissue conductivity in tissue ablation by nanosecond pulsed electric fields.

Authors:  Edwin A Oshin; Siqi Guo; Chunqi Jiang
Journal:  Bioelectrochemistry       Date:  2021-09-20       Impact factor: 5.373

8.  Cellular imaging of human atherosclerotic lesions by intravascular electric impedance spectroscopy.

Authors:  Ines Streitner; Markus Goldhofer; Sungbo Cho; Ralf Kinscherf; Hagen Thielecke; Martin Borggrefe; Tim Süselbeck; Florian Streitner
Journal:  PLoS One       Date:  2012-04-11       Impact factor: 3.240

9.  3-D Electrochemical Impedance Spectroscopy Mapping of Arteries to Detect Metabolically Active but Angiographically Invisible Atherosclerotic Lesions.

Authors:  René R Sevag Packard; Yuan Luo; Parinaz Abiri; Nelson Jen; Olcay Aksoy; William M Suh; Yu-Chong Tai; Tzung K Hsiai
Journal:  Theranostics       Date:  2017-06-22       Impact factor: 11.556

10.  Non-Invasive Electrical Impedance Tomography for Multi-Scale Detection of Liver Fat Content.

Authors:  Yuan Luo; Parinaz Abiri; Shell Zhang; Chih-Chiang Chang; Amir H Kaboodrangi; Rongsong Li; Ashish K Sahib; Alex Bui; Rajesh Kumar; Mary Woo; Zhaoping Li; René R Sevag Packard; Yu-Chong Tai; Tzung K Hsiai
Journal:  Theranostics       Date:  2018-02-08       Impact factor: 11.556

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