Label-free Measurement

Label-free measurement is a set of analytical techniques that characterizes biological samples without attaching fluorescent, radioactive, or chemical tags, preserving native sample properties and simplifying analysis. Instead, these methods detect changes in intrinsic physical signals, such as mass, refractive index, impedance, optical scattering, or mechanical behavior, as cells, molecules, or tissues interact with a sensor or undergo biological changes. In bioengineering, label-free measurement supports real-time monitoring of cell growth, viability, adhesion, differentiation, and biomolecular binding. By reducing sample preparation and potential perturbation from labels, it can improve throughput, enable longitudinal studies, and contribute to diagnostic platforms, drug screening, and engineered tissue evaluation.

Label-free Measurement - Related Videos

Research

JoVE Journal - Bioengineering

Simultaneous Label-Free Autofluorescence Multi-Harmonic Microscopy

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Cited by 3 •

2025

This protocol presents a step-by-step guide for the Simultaneous Label-free Autofluorescence Multi-harmonic (SLAM) microscopic technique, including details on how to generate the laser light source, prepare a tissue sample, conduct imaging, and analyze the data. SLAM advances nonlinear microscopy by measuring four complementary label-free contrasts to investigate the tissue microenvironment.

Measuring Exocytosis in Neurons Using FM Labeling

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Cited by 7 •

2006

The ability to measure the kinetics of vesicle release can help provide insight into some of the basics of neurotransmission. Here we used real-time imaging of vesicles labeled with the red fluorescent dye FM 4-64 to measure the rate of presynaptic vesicle release in hippocampal neuronal cultures.

Bromodeoxyuridine Pulse Labelling Assay: A Technique to Measure Cell Proliferation

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2023

The video describes the stepwise pulse labeling assay of mammalian cells with bromodeoxyuridine (BrdU) for measuring cell proliferation. The BrdU uptake permits the temporal tracking of cells that were in the synthesis phase at a specific point in time, without requiring the cells to be synchronized.

Measuring Cell Cycle Progression Kinetics with Metabolic Labeling and Flow Cytometry

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Cited by 13 •

2012

Tracking subtle changes in the progression and kinetics of cell cycle stages can be accomplished by use of a combination of metabolic labeling of nucleic acids with BrdU and total genomic DNA staining via Propidium Iodide. This method avoids the need of chemical synchronization of cycling cells, thereby preventing the introduction of non-specific DNA damage, which in turn affects cell cycle progression.

Measuring G-protein-coupled Receptor Signaling via Radio-labeled GTP Binding

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Cited by 11 •

2017

Guanosine triphosphate (GTP) binding is one of the earliest events in G-Protein-Coupled Receptor (GPCR) activation. This protocol describes how to pharmacologically characterize specific GPCR-ligand interactions by monitoring the binding of the radio-labeled GTP analog, [35S]guanosine-5'-O-(3-thio)triphosphate ([35S]GTPγS), in response to a ligand of interest.

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