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Updated: Aug 15, 2026

Phase Behavior of Charged Vesicles Under Symmetric and Asymmetric Solution Conditions Monitored with Fluorescence Microscopy
Published on: October 24, 2017
Vesicle internalization proceeds via a morphological phase transition
Itay Schachter1,2, Pavel Jungwirth1, Daniel Harries2
1Institute of Organic Chemistry and Biochemistry, Czech Academy of Sciences, Flemingovo nám. 542/2, 160 00, Prague 6, Czech Republic. itay.schachter@mail.huji.ac.il.
Vesicle internalization involves structural changes, transitioning from an "eye" to a "kettle" shape. This morphological shift is influenced by vesicle volume and membrane properties, impacting cellular transport.
Area of Science:
- Cell Biology
- Biophysics
- Membrane Dynamics
Background:
- Vesicle internalization is crucial for endocytic transport and cellular compartmentalization.
- Energetics of vesicle budding and pearling depend on curvature, area asymmetry, and volume.
- Physical drivers of hemifused intermediate structural transformation are not fully understood.
Purpose of the Study:
- To investigate the physical principles governing structural transformations of hemifused intermediates during vesicle internalization.
- To identify and characterize morphological phase transitions in invaginating vesicles.
Main Methods:
- Utilized a continuum elastic model to simulate vesicle dynamics.
- Analyzed the energetic landscapes and morphological changes of hemifused vesicles.
Main Results:
- Identified a morphological phase transition from "eye" to "kettle" geometry in hemifused invaginating vesicles.
- This transition is discontinuous below a critical reduced volume threshold and continuous above it.
- Kettle morphology is metastable, suggesting a potential hysteretic externalization pathway.
- Increased spontaneous curvature or vesicle size can minimize free energy, but scaling vesicle size alone does not overcome the energy barrier.
Conclusions:
- The study quantitatively characterizes vesicle internalization intermediates, providing a structural reference for experimental imaging.
- The findings map the morphological evolution of internalization pathways across physical parameter space.
- Understanding these transitions is key to deciphering endocytic transport mechanisms.
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