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Updated: Sep 2, 2026

Nanomechanics of Drug-target Interactions and Antibacterial Resistance Detection
Published on: October 25, 2013
Strain Sensor-Integrated Tri-Layer Cantilever with Enhanced Sensitivity and Stability for Quantitative Cardiotoxicity
Ke Liu1, Arunkumar Shanmugasundaram1,2, Haolan Sun1
1MEMS and Nanotechnology Laboratory, School of Mechanical Engineering, Chonnam National University, Gwangju61186, Republic of Korea.
Abstract:
Cantilever-based biosensors provide a powerful approach for monitoring cardiomyocyte contractility, but conventional designs often exhibit baseline bending that compromises sensitivity and limits predictive accuracy in drug screening. Here, we present a tri-layer polymer cantilever biosensing platform integrated with a full-bridge piezoresistive strain sensor for the quantitative measurement of cardiomyocyte contractility. The hybrid KMSF-SU-8-KMSF structure minimizes residual stress and reduces baseline deformation by more than 85% compared to SU-8-only cantilevers. This architecture improves strain transfer to the embedded sensors and achieves a limit of detection of approximately 1.2 kPa, which is lower than that of previously reported cantilever systems. The top KMSF layer functions as both an encapsulation barrier and a tissue-guiding interface, promoting alignment, enhancing sarcomere organization, and increasing connexin-43 expression to support cardiomyocyte maturation. Drug screening further confirms the platform's predictive accuracy, as the device successfully detects the expected pharmacological effects: verapamil decreases contractile force, isoproterenol increases both force and beat rate, blebbistatin suppresses myofilament activity, and astemizole induces arrhythmic beating consistent with hERG channel blockade. By providing stable, label-free, and high-sensitivity electronic readouts of cardiomyocyte contractility, this platform establishes a robust and scalable solution for preclinical cardiotoxicity testing, disease modeling, and personalized medicine.

