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Updated: Oct 23, 2025

Visualizing Membrane Ruffle Formation using Scanning Electron Microscopy
Published on: May 27, 2021
Live Fluorescence, Inverse Imaging of Cell Ruffling, and Macropinocytosis
Yvette W H Koh1, Yu Hung1, Neeraj Tuladhar1
1Institute for Molecular Bioscience, The University of Queensland.
Abstract:
Macropinocytosis is a highly conserved but still incompletely understood process that is essential for the uptake and ingestion of fluid, fluid-phase nutrients and other material in cells. The dramatic extension of cell surface ruffles, their closure to form macropinosomes, and the maturation of internalized macropinosomes are key events in this pathway that can be difficult to capture using conventional confocal imaging based on tracking a bolus of fluorescent cargo. Fluorescent dextrans are commonly used experimentally as fluid phase markers for macropinosomes and for other endocytic pathways. A method the lab has adopted to optimize the imaging of dextran uptake involves using live imaging of cells bathed in high concentrations of fluorescent dextran in the medium, with the unlabeled cells appearing in relief (as black). The cell ruffles are highlighted to visualize ruffle closure, and internalized macropinosomes appear as fluorescent vacuoles in the cell interior. This method is optimal for visualizing macropinosome features and allows for easy segmentation and quantification. This paper describes dual-labeling of pathways with different sized dextrans and the co-expression of lipid probes and fluorescent membrane proteins to demark macropinosomes and other endosomes. The detection of internalized dextran at an ultrastructural level using correlative light and electron microscopy (CLEM) is also demonstrated. These cell processes can be imaged using multiple live imaging modalities, including in 3D. Taken together, these approaches optimize macropinosome imaging for many different settings and experimental systems.
Insights
This study optimizes imaging of macropinocytosis, a vital cellular process. New live-imaging techniques enhance visualization of macropinosomes, aiding research into cellular uptake mechanisms.
Area of Science:
- Cell Biology
- Molecular Biology
- Microscopy
Background:
- Macropinocytosis is a crucial cellular process for nutrient uptake, yet its mechanisms remain incompletely understood.
- Conventional imaging methods struggle to capture dynamic events like macropinosome formation and maturation.
- Fluorescent dextrans are common markers for studying endocytic pathways.
Purpose of the Study:
- To develop and optimize live-imaging techniques for visualizing macropinocytosis.
- To improve the segmentation and quantification of macropinosomes.
- To demonstrate advanced imaging strategies for studying cellular uptake.
Main Methods:
- Live imaging of cells in high concentrations of fluorescent dextran to visualize unlabeled cells in relief.
- Dual-labeling with different sized dextrans and co-expression of lipid probes/fluorescent proteins.
- Correlative light and electron microscopy (CLEM) for ultrastructural detection of internalized dextran.
Main Results:
- The optimized method effectively visualizes cell surface ruffles, macropinosome formation, and internalized macropinosomes.
- Dual-labeling and co-expression allow for clear demarcation of macropinosomes and other endosomes.
- CLEM successfully detected internalized dextran at the ultrastructural level.
Conclusions:
- The described live-imaging approaches significantly enhance the visualization and analysis of macropinocytosis.
- These methods are adaptable to various experimental systems and imaging modalities, including 3D.
- The optimized techniques facilitate a deeper understanding of cellular fluid-phase uptake.
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