U2 Os Cells

U2OS cells are a human osteosarcoma-derived cell line used as an experimental model for studying cellular structure, proliferation, and disease-related biology. In culture, these adherent cells grow under controlled nutrient, temperature, and gas conditions, allowing researchers to manipulate treatments and measure changes in processes such as DNA damage responses, cell-cycle progression, and gene expression. Their reproducible growth and compatibility with microscopy, transfection, and molecular assays support research in cancer biology, cell signaling, genome maintenance, and drug evaluation. Although they do not represent every feature of normal bone or tumor tissue, U2OS cells provide a practical, standardized system for testing hypotheses before validation in more complex models.

U2 Os Cells - Related Videos

Research

JoVE Journal - Bioengineering

An Electroporation Cytometry Protocol for Live-Cell, Fluorescence Microscopy Using U2 OS Cell Culture

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2025

Electroporation is the use of pulsed electric fields (PEFs) to create transient pores in cell cultures to introduce molecular cargo. This technique has recently become widely used in research and clinical settings. Here, we describe electroporation techniques using the recently developed "Electroporation Cytometry System" for performing live-cell, fluorescence microscopy.

Monitoring Kinase and Phosphatase Activities Through the Cell Cycle by Ratiometric FRET

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Cited by 21 •

2012

FRET-based reporters are increasingly used to monitor kinase and phosphatase activities in live cells. Here we describe a method on how to use FRET-based reporters to assess cell cycle-dependent changes in target phosphorylation.

Measuring the Kinetics of mRNA Transcription in Single Living Cells

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Cited by 6 •

2011

RNA polymerase II transcriptional kinetics are measured on specific genes in living cells. mRNAs transcribed from the gene of interest are fluorescently tagged and using Fluorescence Recovery After Photobleaching (FRAP) the in vivo kinetics of transcriptional elongation are obtained.

Research

JoVE Journal - Biology
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Analysis of Global RNA Synthesis at the Single Cell Level following Hypoxia

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Cited by 2 •

2014

We describe a technique for analysis of global RNA synthesis in hypoxia using imaging. Click-chemistry labeling of RNA has not previously been performed under hypoxia and allows visualization of global RNA changes at the single cell level. This approach complements the existing averaged RNA techniques, allowing direct visualization of cell-to-cell changes in global RNA synthesis.

Monitoring Cell-autonomous Circadian Clock Rhythms of Gene Expression Using Luciferase Bioluminescence Reporters

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Cited by 78 •

2012

Circadian clocks function within individual cells, i.e., they are cell-autonomous. Here, we describe methods for generating cell-autonomous clock models using non-invasive, luciferase-based real-time bioluminescence technology. Reporter cells provide tractable, functional model systems for studying circadian biology.

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