Related Experiment Video
Updated: Aug 7, 2026

Rapid and Robust Analysis of Cellular and Molecular Polarization Induced by Chemokine Signaling
Published on: December 12, 2014
Modulated polarization microscopy: a promising new approach to visualizing cytoskeletal dynamics in living cells
1Division of Molecular Cell and Developmental Biology, University of Texas, Austin, Texas 78712, USA.
Abstract:
In an effort to visualize cytoskeletal filaments in living cells, we have developed modulated polarization microscopy. Modulated polarization microscopy visualizes cytoskeletal filaments based on their birefringence but differs from the standard polarization microscopy by exploiting the angle dependence of birefringence. A prototype instrument has been developed using two Faraday rotators under computer control to change the angle of plane polarized light at a known rate. By placing one Faraday rotator before and one after the specimen, rotation produced by the first Faraday rotator is cancelled by the second. This allows the use of fixed polarizer and analyzer in a crossed configuration and continuous imaging of the specimen between crossed polarizers. The variation in polarization angle of light illuminating the specimen causes birefringent elements to oscillate in brightness. Images acquired as polarization angle is varied are then processed by a Fourier filter image-processing algorithm. The Fourier filtering algorithm isolates those signals that vary at the proper rate, whereas static or random signals are removed. Here we show that the modulated polarization microscope can reveal cytoskeletal elements including stress fibers and microtubules in living cells.
Insights
Modulated polarization microscopy visualizes cytoskeletal filaments in living cells by analyzing light
Area of Science:
- Cell Biology
- Microscopy Techniques
- Biophysics
Background:
- Cytoskeletal filaments are crucial for cellular structure and function.
- Visualizing these dynamic structures in living cells presents significant challenges.
- Standard polarization microscopy has limitations in live-cell imaging.
Purpose of the Study:
- To develop a novel microscopy technique for visualizing cytoskeletal filaments in living cells.
- To overcome limitations of standard polarization microscopy for live-cell imaging.
Main Methods:
- Developed modulated polarization microscopy using computer-controlled Faraday rotators.
- Exploited the angle dependence of birefringence for signal generation.
- Employed Fourier filter image processing to isolate relevant signals.
Main Results:
- Successfully visualized cytoskeletal filaments, including stress fibers and microtubules, in living cells.
- Demonstrated the ability to distinguish dynamic cytoskeletal signals from static or random noise.
- Achieved continuous imaging between crossed polarizers.
Conclusions:
- Modulated polarization microscopy is a powerful new tool for live-cell cytoskeletal imaging.
- The technique offers enhanced visualization of dynamic cellular structures.
- This method provides a significant advancement in live-cell microscopy.
Related Concept Videos
Studying the Cytoskeleton
Three-Dimensional Microscopy in Microbiology

