High-Throughput Mechanical Characterization of Giant Unilamellar Vesicles by Real-Time Deformability Cytometry
Maximilian Kloppe, Stefan J. Maurer, Tobias Abele, Kerstin G\"opfrich, Sebastian Aland

TL;DR
This paper introduces a high-throughput, simulation-based RT-DC method for measuring the mechanical properties of GUVs, enabling rapid, contact-free population analysis and potential sorting based on membrane mechanics.
Contribution
The study develops a novel, scalable RT-DC framework with simulation-driven models and fitting strategies for accurate GUV mechanical property estimation, surpassing traditional techniques in throughput.
Findings
RT-DC accurately measures GUV membrane mechanics.
New fitting strategies improve robustness in noisy data.
Method scales across different experimental conditions.
Abstract
Real-time deformability cytometry (RT-DC) enables high-throughput, contact-free mechanical characterization of soft microscopic objects. Here we apply this technique to giant unilamellar vesicles (GUVs). To interpret vesicle deformation in RT-DC, we present a simulation-based model taking into account the area expansion modulus as the dominant mechanical parameter. Using phase-field simulations over a wide parameter space, we find GUV deformation to depend linearly on GUV area. Based on these results, we derive two complementary fitting strategies for extracting the area expansion modulus K from RT-DC data: a direct model-based fit for single-vesicle characterization and a noise-resistant collective approach that enables robust population-level estimates. Furthermore, we introduce a combined fitting method that integrates both approaches to filter outliers and improve accuracy in…
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Taxonomy
TopicsCellular Mechanics and Interactions · Force Microscopy Techniques and Applications · Lipid Membrane Structure and Behavior
