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Wireless, wearable elastography via mechano-acoustic wave sensing for ambulatory monitoring of tissue stiffness.

Publication ,  Journal Article
Li, C; Wang, H; Song, Z; Zhang, W; Pan, Y; Zhao, Z; Qiu, C; Yin, K; Han, M; Wang, AB; Luan, H; Li, J; Yan, W; Chen, S; Shen, H; Liu, T-L ...
Published in: Science advances
September 2025

Assessing the mechanical properties of soft tissues holds broad clinical relevance. Advances in flexible electronics offer possibilities for wearable monitoring of tissue stiffness. However, existing technologies often rely on tethered setups or require frequent calibration, restricting their use in ambulatory environments. This study introduces a mechano-acoustic wave sensing technology for automated, wireless elastography. The patch-form sensor maintains conformal contact with the skin, regardless of body motion or deformation. It provides continuous, depth-sensitive estimation of subcutaneous tissue stiffness through real-time surface wave dispersion analysis. Theoretical and experimental investigations on phantom materials and tissues spanning a wide range of Young's modulus (in kilopascals to megapascals) demonstrate the capability of the device to rapidly and robustly evaluate the stiffness at depths up to several centimeters. The device shows compatibility with various tissue models, with results consistent with in-parallel ultrasound elastography measurements. Deployment of the device during exercises confirms its viability for ambulatory monitoring, enabling continuous assessment of variation in tissue stiffness.

Duke Scholars

Published In

Science advances

DOI

EISSN

2375-2548

ISSN

2375-2548

Publication Date

September 2025

Volume

11

Issue

36

Start / End Page

eady0534

Related Subject Headings

  • Wireless Technology
  • Wearable Electronic Devices
  • Phantoms, Imaging
  • Humans
  • Elasticity Imaging Techniques
  • Elastic Modulus
 

Citation

APA
Chicago
ICMJE
MLA
NLM
Li, C., Wang, H., Song, Z., Zhang, W., Pan, Y., Zhao, Z., … Ni, X. (2025). Wireless, wearable elastography via mechano-acoustic wave sensing for ambulatory monitoring of tissue stiffness. Science Advances, 11(36), eady0534. https://doi.org/10.1126/sciadv.ady0534
Li, Chenhang, Heling Wang, Ziwu Song, Wei Zhang, Yuxin Pan, Zihao Zhao, Chaorui Qiu, et al. “Wireless, wearable elastography via mechano-acoustic wave sensing for ambulatory monitoring of tissue stiffness.Science Advances 11, no. 36 (September 2025): eady0534. https://doi.org/10.1126/sciadv.ady0534.
Li C, Wang H, Song Z, Zhang W, Pan Y, Zhao Z, et al. Wireless, wearable elastography via mechano-acoustic wave sensing for ambulatory monitoring of tissue stiffness. Science advances. 2025 Sep;11(36):eady0534.
Li, Chenhang, et al. “Wireless, wearable elastography via mechano-acoustic wave sensing for ambulatory monitoring of tissue stiffness.Science Advances, vol. 11, no. 36, Sept. 2025, p. eady0534. Epmc, doi:10.1126/sciadv.ady0534.
Li C, Wang H, Song Z, Zhang W, Pan Y, Zhao Z, Qiu C, Yin K, Han M, Wang AB, Luan H, Li J, Yan W, Chen S, Shen H, Liu T-L, Lee SSM, Ding W, Huang Y, Rogers JA, Wu C, Ni X. Wireless, wearable elastography via mechano-acoustic wave sensing for ambulatory monitoring of tissue stiffness. Science advances. 2025 Sep;11(36):eady0534.

Published In

Science advances

DOI

EISSN

2375-2548

ISSN

2375-2548

Publication Date

September 2025

Volume

11

Issue

36

Start / End Page

eady0534

Related Subject Headings

  • Wireless Technology
  • Wearable Electronic Devices
  • Phantoms, Imaging
  • Humans
  • Elasticity Imaging Techniques
  • Elastic Modulus