An in-body networking system for communication between wearable and implantable therapeutics

Networks of bioelectronic sensors and actuators enable closed-loop therapies that connect distant, related physiological dynamics. Currently, device interactions are limited by communication methods that inefficiently penetrate tissue and require bulky components. Inspired by the ionic signaling of the nervous system, we engineered a communication platform that uses tissue as a conductive medium to transmit signals among implants and wearables through epidermal, subcutaneous, intraperitoneal, and gastrointestinal spaces. Devices generate transient electric fields that selectively activate other devices when receiving pulses that switch on their specific transistor circuits. Implants are syringe-injectable, require negligible power consumption in listening states, and provide >10× greater tissue communication coverage than Bluetooth. In vivo in rats, we demonstrate coordinated, full-body networks of sensors and neural interfaces that enable wireless dual-limb motor control.

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Publication Details

Journal
Science
Published
2026-09-24
DOI
https://doi.org/10.1126/science.adz5300
Primary Topic
Wireless Body Area Networks
Type
article
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An in-body networking system for communication between wearable and implantable therapeutics

Alex Abramson, Camille E. Cunin, Seán Healy, Garan Byun et al.
Science
Wireless Body Area Networks
article

An in-body networking system for communication between wearable and implantable therapeutics

Alex Abramson, Camille E. Cunin, Seán Healy, Garan Byun, Markella Bibidakis, Woon‐Hong Yeo, Joy M. Jackson, Aristide Gumyusenge, Ramy Ghanim, Anika Kaushik, Eugene Kim, Yoon Jae Lee, Julia Z. Ding, Alaz Cig, Jihoon Park, Elaine Feller, Dilay Aygun
article en

Abstract

Networks of bioelectronic sensors and actuators enable closed-loop therapies that connect distant, related physiological dynamics. Currently, device interactions are limited by communication methods that inefficiently penetrate tissue and require bulky components. Inspired by the ionic signaling of the nervous system, we engineered a communication platform that uses tissue as a conductive medium to transmit signals among implants and wearables through epidermal, subcutaneous, intraperitoneal, and gastrointestinal spaces. Devices generate transient electric fields that selectively activate other devices when receiving pulses that switch on their specific transistor circuits. Implants are syringe-injectable, require negligible power consumption in listening states, and provide >10× greater tissue communication coverage than Bluetooth. In vivo in rats, we demonstrate coordinated, full-body networks of sensors and neural interfaces that enable wireless dual-limb motor control.

ScienceVol. 393(6818)
Georgia Institute of Technology (US), Emory University (US), The Wallace H. Coulter Department of Biomedical Engineering (US), Massachusetts Institute of Technology (US)
Affordable and clean energy
Openalex Percentile: Top 21%
Wireless Body Area Networks
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An in-body networking system for communication between wearable and implantable therapeutics — Alex Abramson, Camille E. Cunin, et al. · Science (2026) | TGRS Research Map | TGRS