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Updated: Apr 19, 2026

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Membrane Remodeling of Giant Vesicles in Response to Localized Calcium Ion Gradients
Published on: July 16, 2018
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pH gradient-driven deformation of a crista-like vesicle
Yorgos Chatziantoniou1, Hélène Berthoumieux1
1PSL, ESPCI Paris, Gulliver, CNRS, UMR , , 7083, Research University, 75005 Paris, France.
Physical Review. E
|April 18, 2026
Summary
Proton flow through mitochondrial cristae shapes their membrane, optimizing ATP production. This study models how pH gradients create specific crista shapes, crucial for protein function and energy generation.
Area of Science:
- Mitochondrial biophysics
- Membrane biogenesis
- Bioenergetics
Background:
- Mitochondrial cristae are inner membrane folds essential for ATP synthesis.
- ATP production relies on proton flow along the crista membrane surface.
- Transmembrane proteins catalyze ATP synthesis within the cristae.
Purpose of the Study:
- To investigate the hypothesis that proton flux shapes crista membrane geometry.
- To model the influence of pH gradients on crista morphology.
- To understand how membrane shape optimizes protein function in ATP synthesis.
Main Methods:
- Modeling a crista as a spherical vesicle under a diffusive proton gradient.
- Applying the Helfrich model with pH-dependent spontaneous curvature.
- Analyzing vesicle shape in the small deformation regime.
Main Results:
- pH gradients can induce specific membrane shapes, with flat poles and curved equators.
- These shapes correlate with the geometry of proteins involved in ATP synthesis.
- A functionality score and phase diagram for cristae were developed.
Conclusions:
- Proton flux actively shapes mitochondrial cristae, enhancing ATP production efficiency.
- The model provides insights into the biophysical mechanisms of crista morphogenesis.
- The findings align with experimental observations of crista structure and function.
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