A Piezoelectric Microtool for In Vitro Elastic Modulus Measurement and Hepatocellular Carcinoma Boundary Identification

Accurate identification of tumor boundaries is crucial for effective local treatment and protection of surrounding healthy tissue. However, current methods for rapidly characterizing local tissue biomechanical properties remain limited. In this study, we present a novel MEMS-integrated piezoelectric sensor-based medical microtool (IPS-MMT), this device can map the elastic modulus of local tissues in real time and at the sub-millimeter scale, enabling rapid and localized measurements under controlled in vitro conditions. Our device features the integration of a 100 µm‑thick piezoelectric sensor onto a 300 µm‑diameter tungsten tip fabricated via a scalable electrochemical etching platform. This configuration transduces minute tissue deformations into quantifiable electrical signals with a spatial resolution of ∼15 µm and a response time under 10 ms. In ex vivo studies on rat organs and human hepatocellular carcinoma specimens, the IPS-MMT resolved distinct tissue-stiffness differences among normal, peritumoral, and cancerous regions. Independent rheological measurements on six rat organ tissues showed a mean relative agreement of 91.83% with the IPS-MMT measurements, supporting tissue elastic modulus as a promising biomechanical biomarker for tissue differentiation and highlighting the potential of biomechanics-guided precision ablation.

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Publication Details

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Small
Published
2026-08-27
DOI
https://doi.org/10.1002/smll.75511
Primary Topic
Thermoelastic and Magnetoelastic Phenomena
Type
article
Field-Weighted Citation Impact
0.00

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article

A Piezoelectric Microtool for In Vitro Elastic Modulus Measurement and Hepatocellular Carcinoma Boundary Identification

Li Wang, Zhaoyang Chu, Chonghai Xu, Jun Chen et al.
Small
Thermoelastic and Magnetoelastic Phenomena
article

A Piezoelectric Microtool for In Vitro Elastic Modulus Measurement and Hepatocellular Carcinoma Boundary Identification

Li Wang, Zhaoyang Chu, Chonghai Xu, Jun Chen, Xinyu Li, Zheng Yuanwen, Wenteng Tang, Xiaojun Zhang, Huimin Li, Ruoyu Meng
article en

Abstract

Accurate identification of tumor boundaries is crucial for effective local treatment and protection of surrounding healthy tissue. However, current methods for rapidly characterizing local tissue biomechanical properties remain limited. In this study, we present a novel MEMS-integrated piezoelectric sensor-based medical microtool (IPS-MMT), this device can map the elastic modulus of local tissues in real time and at the sub-millimeter scale, enabling rapid and localized measurements under controlled in vitro conditions. Our device features the integration of a 100 µm‑thick piezoelectric sensor onto a 300 µm‑diameter tungsten tip fabricated via a scalable electrochemical etching platform. This configuration transduces minute tissue deformations into quantifiable electrical signals with a spatial resolution of ∼15 µm and a response time under 10 ms. In ex vivo studies on rat organs and human hepatocellular carcinoma specimens, the IPS-MMT resolved distinct tissue-stiffness differences among normal, peritumoral, and cancerous regions. Independent rheological measurements on six rat organ tissues showed a mean relative agreement of 91.83% with the IPS-MMT measurements, supporting tissue elastic modulus as a promising biomechanical biomarker for tissue differentiation and highlighting the potential of biomechanics-guided precision ablation.

Small
Qilu University of Technology (CN), Coal Industry Jinan Design & Research Institute (China) (CN), Shandong Provincial Hospital (CN), Shandong Academy of Sciences (CN), Shandong First Medical University (CN)
Jinan Science and Technology Bureau, National Natural Science Foundation of China, Natural Science Foundation of Shandong Province, Shandong Academy of Sciences, Qilu University of Technology, Key Technology Research and Development Program of Shandong
Good health and well-being
Openalex Percentile: Top 18%
Thermoelastic and Magnetoelastic Phenomena
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