Related Experiment Video
Updated: Jun 2, 2026

PIP-on-a-chip: A Label-free Study of Protein-phosphoinositide Interactions
Published on: July 27, 2017
Fluid and condensed ApoA-I/phospholipid monolayers provide insights into ApoA-I membrane insertion
Lionel Chièze1, Victor Martin Bolanos-Garcia, Mathieu Pinot
1Institut de Physique de Rennes, UMR-CNRS 6251 Université de Rennes 1, Campus de Beaulieu, 35042 Rennes cedex, France.
Insights
Apolipoprotein A-I (ApoA-I) protein insertion into lipid monolayers depends on lipid compressibility and headgroup spacing. Anionic lipids enhance ApoA-I insertion and cluster formation, suggesting a mechanism similar to antimicrobial peptides.
Area of Science:
- Biochemistry
- Biophysics
- Membrane Biology
Background:
- Apolipoprotein A-I (ApoA-I) plays a crucial role in lipid and cholesterol solubilization from cell membranes.
- Understanding ApoA-I interactions with phospholipids (PL) is vital for elucidating its biological functions.
Purpose of the Study:
- To investigate how phospholipid charge and acyl chain organization influence ApoA-I interaction with lipid monolayers.
- To determine the key factors governing ApoA-I insertion and cluster formation within lipid membranes.
Main Methods:
- Utilized phospholipid monolayers of varying compositions (dipalmitoyl-phosphatidylcholine, dioleoyl-phosphatidylcholine, dipalmitoyl-phosphatidylglycerol).
- Employed biophysical techniques including ellipsometry, surface pressure measurements, atomic force microscopy (AFM), and polarization modulation infrared reflection-absorption spectroscopy (PM-IRRAS).
Main Results:
- Monolayer compressibility emerged as the primary determinant of ApoA-I insertion, with minimal headgroup distance required.
- ApoA-I exhibited deepest insertion at highest monolayer compressibility; anionic headgroups facilitated greater protein insertion and alleviated steric constraints.
- AFM revealed protein cluster geometries dependent on lipid charge and headgroup spacing, with specific helical orientations influenced by PL charge.
Conclusions:
- Lipid monolayer compressibility and headgroup spacing are critical for ApoA-I insertion.
- Anionic lipid charges promote ApoA-I insertion and influence cluster formation and orientation.
- ApoA-I interaction with cellular membranes may share mechanistic similarities with antimicrobial peptide-lipid interactions.
Abstract:
Apolipoprotein A-I (ApoA-I) is a protein implicated in the solubilization of lipids and cholesterol from cellular membranes. The study of ApoA-I in phospholipid (PL) monolayers brings relevant information about ApoA-I/PL interactions. We investigated the influence of PL charge and acyl chain organization on the interaction with ApoA-I using dipalmitoyl-phosphatidylcholine, dioleoyl-phosphatidylcholine and dipalmitoyl-phosphatidylglycerol monolayers coupled to ellipsometric, surface pressure, atomic force microscopy and infrared (polarization modulation infrared reflection-absorption spectroscopy) measurements. We show that monolayer compressibility is the major factor controlling protein insertion into PL monolayers and show evidence of the requirement of a minimal distance between lipid headgroups for insertion to occur, Moreover, we demonstrate that ApoA-I inserts deepest at the highest compressibility of the protein monolayer and that the presence of an anionic headgroup increases the amount of protein inserted in the PL monolayer and prevents the steric constrains imposed by the spacing of the headgroup. We also defined the geometry of protein clusters into the lipid monolayer by atomic force microscopy and show evidence of the geometry dependence upon the lipid charge and the distance between headgroups. Finally, we show that ApoA-I helices have a specific orientation when associated to form clusters and that this is influenced by the character of PL charges. Taken together, our results suggest that the interaction of ApoA-I with the cellular membrane may be driven by a mechanism that resembles that of antimicrobial peptide/lipid interaction.
Related Concept Videos
Membrane Fluidity
Mosaic nature of the membrane
The mosaic characteristic of the membrane helps the plasma membrane remain fluid. The integral proteins and lipids exist as separate but loosely-attached molecules in the membrane. The membrane is a relatively...
Membrane Fluidity
Fluid Mosaic Model
Fluid Mosaic Model
Asymmetric Lipid Bilayer
Membrane Domains
Protein Domains
The membrane comprises a group of distinct proteins responsible for carrying out a cell's specific function. For example, the plasma membrane of the human sperm, or a single germ cell, contains a unique set of proteins in the anterior...

