Brillouin Microscopy

Brillouin microscopy is a label-free, noncontact optical technique that maps the mechanical properties of biological materials, making it useful for studying how physical forces shape developing tissues. It works by detecting Brillouin light scattering, in which incident light interacts with thermally driven acoustic waves and undergoes a small frequency shift related to the material’s longitudinal viscoelastic modulus. By collecting these shifts throughout cells, embryos, or organoids, researchers can generate three-dimensional maps of intracellular and tissue mechanics without physical probes. In developmental biology, this method helps connect changes in cellular material properties with morphogenesis, differentiation, and tissue organization.

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Research

JoVE Journal - Bioengineering

Mechanical Mapping of Spheroids Using Brillouin Spectroscopy

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2025

This article describes a protocol for mechanical characterisation of living spheroids within a 3D matrix using Brillouin micro-spectroscopy. This all-optical method enables spheroid visualisation with microscale resolution and quantitative mechanical properties. This approach has implications for mechanical phenotyping; for instance, determining pathological states of tumor spheroids within a 3D microenvironment.

Research

JoVE Journal - Bioengineering
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Preparation of Extracellular Matrix Protein Fibers for Brillouin Spectroscopy

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Cited by 20 •

2016

We present a protocol for the application of Brillouin light scattering spectroscopy to elastin and trypsin-purified type I collagen fibers of the extracellular matrix to extract their full elastic properties.

High-speed Continuous-wave Stimulated Brillouin Scattering Spectrometer for Material Analysis

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Cited by 7 •

2017

We describe the construction of a rapid continuous-wave-stimulated-Brillouin-scattering (CW-SBS) spectrometer. The spectrometer employs single-frequency diode-lasers and an atomic vapor notch-filter to acquire transmission spectra of turbid/non-turbid samples with high spectral-resolution at speeds up to 100-fold faster than those of existing CW-SBS spectrometers. This improvement enables high-speed Brillouin material analysis.

High Speed Sub-GHz Spectrometer for Brillouin Scattering Analysis

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Cited by 42 •

2015

Here we present a protocol to build a rapid Brillouin spectrometer. Cascading virtually imaged phase array (VIPA) etalons achieve a measurement speed more than 1,000 times faster than traditional scanning Fabry-Perot spectrometers. This improvement provides the means for Brillouin analysis of tissue and biomaterials at low power levels in vivo.

Correlative Light- and Electron Microscopy Using Quantum Dot Nanoparticles

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Cited by 12 •

2016

A method is described whereby quantum dot (QD) nanoparticles can be used for correlative immunocytochemical studies of epoxy embedded human pathology tissue. We employ commercial antibody fragment conjugated QDs that are visualized by widefield fluorescence light microscopy and transmission electron microscopy.

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