Stretchable large-area transparent nanowire composite arrays for label-free multimodal interrogation of cardiac physiology

N Nathaniel T. Quirion (Department of Biomedical Engineering, The George Washington University) B Bridget R. Alber (Department of Biomedical Engineering, The George Washington University) C Chenghe Dong (Department of Biomedical Engineering, The George Washington University) A Amy Fehr (Department of Biomedical Engineering, The George Washington University) Q Qinai Zhao (Department of Aerospace and Mechanical Engineering, University of Southern California) N Nora Shields (Department of Biomedical Engineering, The George Washington University) Z Ze Yang H Hangbo Zhao (Department of Aerospace and Mechanical Engineering, University of Southern California) M Matthew W. Kay (Department of Biomedical Engineering, The George Washington University) L Luyao Lu (Department of Biomedical Engineering, The George Washington University)

Abstract

Simultaneous interrogation of cardiac electrophysiological and metabolic processes is essential for investigating and treating heart disease. Key challenges remain in creating stretchable multimodal bioelectronic devices capable of organ-scale, label-free probing of electrophysiology and metabolism in vivo. Here, we present stretchable, scalable, large-area transparent microelectrode arrays (MEAs) that integrate up to 144 microelectrodes and interconnects, enabling a centimeter-scale field of view to tackle these challenges. The microelectrodes consist of conductive polymer-coated metal nanowire composites with outstanding optical transparency and electrochemical performance for both electrophysiological sensing and electrical pacing. These large-area arrays exhibit excellent yield, uniformity, biocompatibility, and mechanical deformability like native cardiac tissue. They successfully achieve in vivo spatiotemporal mapping of electrophysiological activity together with colocalized label-free autofluorescence imaging of metabolism across all four beating heart chambers under clinically relevant conditions in small animals, including ischemia, arrhythmia, and device-delivered electrotherapy. The platform offers methodological opportunities to advance basic and clinical cardiology.

Article Details

Volume / Issue Vol. 123, Issue 17
Published April 28, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (10)

N

Nathaniel T. Quirion

Department of Biomedical Engineering, The George Washington University

B

Bridget R. Alber

Department of Biomedical Engineering, The George Washington University

C

Chenghe Dong

Department of Biomedical Engineering, The George Washington University

A

Amy Fehr

Department of Biomedical Engineering, The George Washington University

Q

Qinai Zhao

Department of Aerospace and Mechanical Engineering, University of Southern California

N

Nora Shields

Department of Biomedical Engineering, The George Washington University

Z

Ze Yang

H

Hangbo Zhao

Department of Aerospace and Mechanical Engineering, University of Southern California

M

Matthew W. Kay

Department of Biomedical Engineering, The George Washington University

L

Luyao Lu

Department of Biomedical Engineering, The George Washington University