A wearable acoustofluidic patch for rapid reversal of opioid overdose

Opioids are among the most potent and reliable analgesic agents currently available, but their overdose can lead to respiratory depression and death. Although naloxone is widely used to reverse opioid overdose, it is often challenging to administer naloxone quickly enough to reverse an opioid overdose before death. Herein, we present a wearable acoustofluidic patch for rapid and automatic detection and reversal of opioid overdose. By integrating digital acoustic streaming into a 3D-printed micro-device, an acoustofluidic patch can be assembled for active and on-demand transdermal delivery of naloxone. By incorporating deep learning-guided respiratory sensing, the wearable patch can be further adapted for intelligent closed-loop treatment of opioid overdose. Moreover, our wearable patch has demonstrated successful reversal of fentanyl overdose in a mouse model, showing significantly reduced detection time, duration, and severity of overdose events, compared to the conventional method. This innovative approach may provide a promising means for personalized healthcare and digital therapy against acute disease. Opioid overdose can be deadly, and timely naloxone delivery remains challenging. Here, the authors develop a wearable acoustofluidic patch that detects overdose using deep-learning respiratory sensing and automatically delivers naloxone to reverse fentanyl overdose in mice.

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Publication Details

Journal
Nature Communications
Published
2026-08-24
DOI
https://doi.org/10.1038/s41467-026-77033-x
Primary Topic
Microfluidic and Bio-sensing Technologies
Type
article
Field-Weighted Citation Impact
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article

A wearable acoustofluidic patch for rapid reversal of opioid overdose

Ken Mackie, Feng Guo, Jack Crystal, Yantao Xing et al.
Nature Communications
Microfluidic and Bio-sensing Technologies
article

A wearable acoustofluidic patch for rapid reversal of opioid overdose

Ken Mackie, Feng Guo, Jack Crystal, Yantao Xing, Gergő Szanda, Junhua Xu, Heather B. Bradshaw, Chunhui Tian, Hongwei Cai, Taylor J. Woodward, Xiang Li, Zheng Ao, Zhuhao Wu, Han-Ting Chen, Yang Yang, Vivian Niu
article en

Abstract

Opioids are among the most potent and reliable analgesic agents currently available, but their overdose can lead to respiratory depression and death. Although naloxone is widely used to reverse opioid overdose, it is often challenging to administer naloxone quickly enough to reverse an opioid overdose before death. Herein, we present a wearable acoustofluidic patch for rapid and automatic detection and reversal of opioid overdose. By integrating digital acoustic streaming into a 3D-printed micro-device, an acoustofluidic patch can be assembled for active and on-demand transdermal delivery of naloxone. By incorporating deep learning-guided respiratory sensing, the wearable patch can be further adapted for intelligent closed-loop treatment of opioid overdose. Moreover, our wearable patch has demonstrated successful reversal of fentanyl overdose in a mouse model, showing significantly reduced detection time, duration, and severity of overdose events, compared to the conventional method. This innovative approach may provide a promising means for personalized healthcare and digital therapy against acute disease. Opioid overdose can be deadly, and timely naloxone delivery remains challenging. Here, the authors develop a wearable acoustofluidic patch that detects overdose using deep-learning respiratory sensing and automatically delivers naloxone to reverse fentanyl overdose in mice.

Nature Communications
Brigham and Women's Hospital (US), Harvard University (US), Indiana University Bloomington (US)
Good health and well-being
Openalex Percentile: Top 18%
Microfluidic and Bio-sensing Technologies
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