| Literature DB >> 32541030 |
Jia Liu1, Xinyuan Zhang2,3, Yuxin Liu4, Miguel Rodrigo3, Patrick D Loftus2, Joy Aparicio-Valenzuela2, Jukuan Zheng1, Terrence Pong2, Kevin J Cyr2, Meghedi Babakhanian3, Jasmine Hasi5, Jinxing Li1, Yuanwen Jiang1, Christopher J Kenney5, Paul J Wang3, Anson M Lee6, Zhenan Bao7.
Abstract
Electrophysiological mapping of chronic atrial fibrillation (AF) at high throughput and high resolution is critical for understanding its underlying mechanism and guiding definitive treatment such as cardiac ablation, but current electrophysiological tools are limited by either low spatial resolution or electromechanical uncoupling of the beating heart. To overcome this limitation, we herein introduce a scalable method for fabricating a tissue-like, high-density, fully elastic electrode (elastrode) array capable of achieving real-time, stable, cellular level-resolution electrophysiological mapping in vivo. Testing with acute rabbit and porcine models, the device is proven to have robust and intimate tissue coupling while maintaining its chemical, mechanical, and electrical properties during the cardiac cycle. The elastrode array records epicardial atrial signals with comparable efficacy to currently available endocardial-mapping techniques but with 2 times higher atrial-to-ventricular signal ratio and >100 times higher spatial resolution and can reliably identify electrical local heterogeneity within an area of simultaneously identified rotor-like electrical patterns in a porcine model of chronic AF.Entities:
Keywords: atrial fibrillation; high-density electrophysiology; in vivo cardiac mapping; stretchable bioelectronics
Mesh:
Year: 2020 PMID: 32541030 PMCID: PMC7334471 DOI: 10.1073/pnas.2000207117
Source DB: PubMed Journal: Proc Natl Acad Sci U S A ISSN: 0027-8424 Impact factor: 11.205