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Published on: November 19, 2009
Membrane Domain Anti-Registration Induces an Intrinsic Transmembrane Potential
Xiaoqian Lin1,2, Kaidong Lin1, Shiqi He1
1Beijing Advanced Innovation Center for Biomedical Engineering, School of Engineering Medicine & School of Biological Science and Medical Engineering, Beihang University, Beijing 100191, China.
Insights
Membrane domain anti-registration, where lipid rafts and non-rafts align oppositely, creates local membrane asymmetry. This asymmetry generates an intrinsic transmembrane potential, impacting cell function.
Area of Science:
- Cell biology
- Biophysics
- Molecular dynamics
Background:
- Plasma membranes form nanoscale domains like liquid-ordered (Lo) lipid rafts and liquid-disordered (Ld) non-rafts.
- Inter-leaflet domain dynamics, specifically anti-registration, remain poorly understood regarding biological impact.
- Transmembrane potential is crucial for cellular processes.
Purpose of the Study:
- To investigate the biological relevance of membrane domain anti-registration.
- To explore the relationship between anti-registration and transmembrane potential.
- To elucidate the role of cholesterol in these phenomena.
Main Methods:
- All-atom molecular dynamics (MD) simulations.
- Confocal fluorescence microscopy experiments.
- Utilized HeLa and 293T cell lines.
Main Results:
- MD simulations indicated an intrinsic transmembrane potential associated with Lo/Ld membrane anti-registration.
- Confocal microscopy showed cholesterol depletion alters cellular transmembrane potential.
- Experimental results align with simulation findings, linking cholesterol content to potential changes.
Conclusions:
- Membrane domain anti-registration induces local membrane asymmetry.
- This asymmetry results in an intrinsic transmembrane potential.
- Cholesterol plays a key role in modulating transmembrane potential via membrane domain organization.
Abstract:
Plasma membrane segregation into various nanoscale membrane domains is driven by distinct interactions between diverse lipids and proteins. Among them, liquid-ordered (Lo) membrane domains are defined as "lipid rafts" and liquid-disordered (Ld) ones as "lipid non-rafts". Using model membrane systems, both intra-leaflet and inter-leaflet dynamics of these membrane domains are widely studied. Nevertheless, the biological impact of the latter, which is accompanied by membrane domain registration/anti-registration, is far from clear. Hence, in this work, we studied the biological relevance of the membrane domain anti-registration using both all-atom molecular dynamics (MD) simulations and confocal fluorescence microscopy. All-atom MD simulations suggested an intrinsic transmembrane potential for the case of the membrane anti-registration (Lo/Ld). Meanwhile, confocal fluorescence microscopy experiments of HeLa and 293T cell lines indicated that membrane cholesterol depletion could significantly alter the transmembrane potential of cells. Considering differences in the cholesterol content between Lo and Ld membrane domains, our confocal fluorescence microscopy experiments are consistent with our all-atom MD simulations. In short, membrane domain anti-registration induces local membrane asymmetry and, thus, an intrinsic transmembrane potential.
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