Related Experiment Video
Updated: May 27, 2026

Realistic Membrane Modeling Using Complex Lipid Mixtures in Simulation Studies
Published on: September 1, 2023
Phase transitions and spatially ordered counterion association in ionic-lipid membranes: a statistical model
M N Tamashiro1, C Barbetta, R Germano
1Instituto de Física Gleb Wataghin, Universidade Estadual de Campinas, 13083-970, Campinas, SP, Brazil. mtamash@ifi.unicamp.br
Insights
We developed a statistical model for ionic lipid phase transitions, revealing new "semidissociated" phases driven by charge ordering and counterion association, impacting lipid membrane behavior.
Area of Science:
- Statistical mechanics
- Physical chemistry
- Biophysics
Background:
- Ionic lipids form bilayer or lamellar structures crucial for cell membranes.
- These lipids exhibit phase transitions between gel and fluid states, influenced by temperature, pressure, and ionic environment.
- Understanding these transitions is key to comprehending membrane function and stability.
Purpose of the Study:
- To develop a statistical model for anomalous phase transitions in charged lipid systems.
- To investigate the influence of electrostatic interactions and counterion association on lipid phase behavior.
- To explore the emergence of novel thermodynamic phases and their characteristics.
Main Methods:
- Modeled the system as a lattice gas with two particle types representing headgroup and acyl-chain states.
- Mapped the model onto an Ashkin-Teller model with cubic terms.
- Employed mean-field approximation to analyze thermodynamic behavior and phase transitions.
Main Results:
- The model predicts rich thermodynamic behavior influenced by counterion chemical potential and lateral pressure.
- Demonstrated the existence of semidissociated thermodynamic phases linked to charge ordering.
- Observed checkerboard-like ordering of charged and neutral lipids due to counterion association.
- Predicted discontinuous acyl-chain order-disorder transitions and continuous charge-ordering transitions.
Conclusions:
- The statistical model successfully captures complex phase behaviors in charged ionic lipids.
- Charge ordering, driven by counterion association, leads to novel thermodynamic phases and transition types.
- The findings provide insights into the physical chemistry of lipid membranes and potential applications.
Abstract:
We propose a statistical model to account for the gel-fluid anomalous phase transitions in charged bilayer- or lamellae-forming ionic lipids. The model Hamiltonian comprises effective attractive interactions to describe neutral-lipid membranes as well as the effect of electrostatic repulsions of the discrete ionic charges on the lipid headgroups. The latter can be counterion dissociated (charged) or counterion associated (neutral), while the lipid acyl chains may be in gel (low-temperature or high-lateral-pressure) or fluid (high-temperature or low-lateral-pressure) states. The system is modeled as a lattice gas with two distinct particle types--each one associated, respectively, with the polar-headgroup and the acyl-chain states--which can be mapped onto an Ashkin-Teller model with the inclusion of cubic terms. The model displays a rich thermodynamic behavior in terms of the chemical potential of counterions (related to added salt concentration) and lateral pressure. In particular, we show the existence of semidissociated thermodynamic phases related to the onset of charge order in the system. This type of order stems from spatially ordered counterion association to the lipid headgroups, in which charged and neutral lipids alternate in a checkerboard-like order. Within the mean-field approximation, we predict that the acyl-chain order-disorder transition is discontinuous, with the first-order line ending at a critical point, as in the neutral case. Moreover, the charge order gives rise to continuous transitions, with the associated second-order lines joining the aforementioned first-order line at critical end points. We explore the thermodynamic behavior of some physical quantities, like the specific heat at constant lateral pressure and the degree of ionization, associated with the fraction of charged lipid headgroups.
More Related Videos
10:02Neutron Spin Echo Spectroscopy as a Unique Probe for Lipid Membrane Dynamics and Membrane-Protein Interactions
Published on: May 27, 2021
10:08Phase Behavior of Charged Vesicles Under Symmetric and Asymmetric Solution Conditions Monitored with Fluorescence Microscopy
Published on: October 24, 2017
Related Concept Videos
Fluid Mosaic Model
The Fluid Mosaic Model
Ionic Association
Mechanisms of Membrane Domain Formation
Another mechanism for membrane domain formation involves membrane proteins interacting with cytoskeletal...
Asymmetric Lipid Bilayer
Phase Transitions: Melting and Freezing