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Updated: Feb 7, 2026

Assembly of Cell Mimicking Supported and Suspended Lipid Bilayer Models for the Study of Molecular Interactions
Published on: August 3, 2021
Singular Interaction between an Antimetastatic Agent and the Lipid Bilayer: The Ohmline Case
Fernando E Herrera1, Charlotte M Sevrain2,3, Paul-Alain Jaffrès2,3
1Physics Department, Universidad Nacional del Litoral, Ciudad Universitaria, 3000 Santa Fe, Argentina.
Abstract:
SK3 channels are abnormaly expressed in metastatic cells, and Ohmline (OHM), an ether lipid, has been shown to reduce the activity of SK3 channels and the migration capacity of cancer cells. OHM incorporation into the plasma membrane is proposed to dissociate the protein complex formed between SK3 and Orai1, a potassium and a calcium channel, respectively, and would lead to a modification in the lipid environment of both the proteins. Here, we report the synthesis of deuterated OHM that affords the determination, through solid-state NMR, of its entire partitioning into membranes mimicking the SK3 environment. Use of deuterated lipids affords the demonstration of an OHM-induced membrane disordering, which is dose-dependent and increases with increasing amounts of cholesterol (CHOL). Molecular dynamics simulations comfort the disordering action and show that OHM interacts with the carbonyl and phosphate groups of stearoylphosphatidylcholine and sphingomyelin and to a minor extent with CHOL. OHM is thus proposed to remove the CHOL OH moieties away from their main binding sites, forcing a new rearrangement with other lipid groups. Such an interaction takes its origin at the lipid-water interface, but it propagates toward the entire lipid molecules and leads to a cooperative destabilization of the lipid acyl chains, that is, membrane disordering. The consequences of this reorganization of the lipid phases are discussed in the context of the OHM-induced inhibition of SK3 channels.
Insights
Ohmline (OHM) disrupts cancer cell SK3 channels by altering membrane structure. This ether lipid
Area of Science:
- Biophysics
- Cancer Biology
- Membrane Biophysics
Background:
- SK3 channels are overexpressed in metastatic cells, promoting cancer cell migration.
- Ohmline (OHM), an ether lipid, reduces SK3 channel activity and cancer cell migration.
- OHM is hypothesized to disrupt SK3 and Orai1 protein complexes by altering the lipid environment.
Purpose of the Study:
- To synthesize deuterated OHM for detailed membrane partitioning analysis.
- To elucidate the mechanism by which OHM affects membrane lipid organization and SK3 channel function.
Main Methods:
- Synthesis of deuterated Ohmline (OHM).
- Solid-state Nuclear Magnetic Resonance (NMR) spectroscopy to determine OHM partitioning in model membranes.
- Molecular dynamics (MD) simulations to investigate OHM-lipid interactions and membrane effects.
Main Results:
- Deuterated OHM partitioning was quantified in membranes mimicking the SK3 channel environment.
- OHM induces dose-dependent membrane disordering, exacerbated by cholesterol (CHOL).
- MD simulations revealed OHM's interaction with lipid headgroups and acyl chains, destabilizing the membrane.
Conclusions:
- OHM reorganizes membrane lipid phases, leading to disordering and destabilization.
- This membrane perturbation is proposed as the mechanism for OHM-induced SK3 channel inhibition.
- Findings provide insights into ether lipid interactions with cholesterol and their impact on membrane protein function.
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