Nanomechanical resonators as probes for living cells

Nanomechanical resonators, including suspended microchannel resonators (SMRs), microcantilevers, doubly clamped beams, membranes, and optomechanical disk resonators, provide label-free measurements of the physical properties of single cells through changes in the sensor resonance frequency or mechanical fluctuations. These properties include cell mass, density, stiffness, viscoelasticity, refractive index, intrinsic vibrational modes, and active fluctuations. Here, we review recent advances in nanomechanical sensing of living cells, highlighting how these technologies have evolved from mass measurements toward multidimensional physical cell phenotyping. We discuss emerging capabilities such as vibrational spectroscopy, nanomotion-based functional assays, and integration with single-cell transcriptomics. Finally, we discuss current challenges and future applications for translating nanomechanical measurements into broadly practical tools for cell biology, precision medicine, anticancer drug response prediction, and antimicrobial drug susceptibility testing.

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Publication Details

Journal
Current Opinion in Structural Biology
Published
2026-09-07
DOI
https://doi.org/10.1016/j.sbi.2026.103382
Primary Topic
Mechanical and Optical Resonators
Type
article
Field-Weighted Citation Impact
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article

Nanomechanical resonators as probes for living cells

Montserrat Calleja, J. J. Ruz, Óscar Malvar, Javier Tamayo et al.
Current Opinion in Structural Biology
Mechanical and Optical Resonators
article

Nanomechanical resonators as probes for living cells

Montserrat Calleja, J. J. Ruz, Óscar Malvar, Javier Tamayo, Priscila M. Kosaka
article en

Abstract

Nanomechanical resonators, including suspended microchannel resonators (SMRs), microcantilevers, doubly clamped beams, membranes, and optomechanical disk resonators, provide label-free measurements of the physical properties of single cells through changes in the sensor resonance frequency or mechanical fluctuations. These properties include cell mass, density, stiffness, viscoelasticity, refractive index, intrinsic vibrational modes, and active fluctuations. Here, we review recent advances in nanomechanical sensing of living cells, highlighting how these technologies have evolved from mass measurements toward multidimensional physical cell phenotyping. We discuss emerging capabilities such as vibrational spectroscopy, nanomotion-based functional assays, and integration with single-cell transcriptomics. Finally, we discuss current challenges and future applications for translating nanomechanical measurements into broadly practical tools for cell biology, precision medicine, anticancer drug response prediction, and antimicrobial drug susceptibility testing.

Current Opinion in Structural BiologyVol. 101
Institute of Micro and Nanotechnology (ES), Universidad Autónoma de Madrid (ES)
Openalex Percentile: Top 12%
Mechanical and Optical Resonators
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Nanomechanical resonators as probes for living cells — Montserrat Calleja, J. J. Ruz, et al. · Current Opinion in Structural Biology (2026) | TGRS Research Map | TGRS