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Synchronization enhanced force microscopy for clinical tumor tissue mechanical characterization
Jiahao Song1, Yanlong Zheng1, Xifeng Sun2
1State Key Laboratory for Manufacturing Systems Engineering, Xi'an Jiaotong University, Xi'an, 710049, China.
Microsystems & Nanoengineering
|July 29, 2026
Summary
A new silicon resonant microelectromechanical systems (MEMS) force sensor precisely measures tissue mechanical properties. This non-destructive technique differentiates normal, tumor, and fibrotic gastric tissues for surgical navigation.
Area of Science:
- Biomedical Engineering
- Materials Science
- Oncology
Background:
- Mechanical properties of tissues and cells are key indicators of physiological and pathological states.
- Existing mechanical measurement techniques often face limitations such as bulkiness and ex vivo constraints.
- Accurate, in situ mechanical characterization is crucial for disease diagnosis and surgical guidance.
Purpose of the Study:
- To develop a high-precision, miniaturized all-silicon resonant microelectromechanical systems (MEMS) force sensor for biological tissue mechanical characterization.
- To evaluate the sensor's performance in measuring surface Young's modulus of human gastric tissues.
- To demonstrate the potential clinical applications of the sensor in distinguishing between normal, tumor, and fibrotic tissues and in surgical navigation.
Main Methods:
- Development of an all-silicon resonant MEMS force sensor utilizing electromagnetic excitation for stable atmospheric operation.
- Integration of a high-Q resonator synchronization enhanced technique to improve sensor resolution and reduce detection noise without sensitivity loss.
- Application of the sensor to perform non-destructive surface Young's modulus tests on human gastric tissue samples.
Main Results:
- The developed MEMS force sensor demonstrated high precision and stability in atmospheric conditions.
- Mechanical differences in surface Young's modulus were successfully identified among normal, tumor, and fibrotic human gastric tissues.
- The measurement process was confirmed to be gentle and non-destructive, preserving tissue integrity.
Conclusions:
- The all-silicon resonant MEMS force sensor offers a novel, high-precision tool for characterizing tissue mechanics.
- The identified mechanical differences provide valuable indicators for distinguishing between morphologically similar gastric tissues in clinical settings.
- The sensor holds significant potential for guiding minimally invasive surgery, particularly in gastric cancer operations.

