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Published on: May 22, 2018
Cholesterol in Membranes Facilitates Aggregation of Amyloid β Protein at Physiologically Relevant Concentrations
Siddhartha Banerjee1, Mohtadin Hashemi1, Karen Zagorski1
1Department of Pharmaceutical Sciences, University of Nebraska Medical Center, 986025 Nebraska Medical Center, Omaha, Nebraska 68198-6025, United States.
Abstract:
The formation of amyloid β (1-42) (Aβ42) oligomers is considered to be a critical step in the development of Alzheimer's disease (AD). However, the mechanism underlying this process at physiologically low concentrations of Aβ42 remains unclear. We have previously shown that oligomers assemble at such low Aβ42 monomer concentrations in vitro on phospholipid membranes. We hypothesized that membrane composition is the factor controlling the aggregation process. Accumulation of cholesterol in membranes is associated with AD development, suggesting that insertion of cholesterol into membranes may initiate the Aβ42 aggregation, regardless of a low monomer concentration. We used atomic force microscopy (AFM) to test the hypothesis and directly visualize the aggregation process of Aβ42 on the surface of a lipid bilayer depending on the cholesterol presence. Time-lapse AFM imaging unambiguously demonstrates that cholesterol in the lipid bilayer significantly enhances the aggregation process of Aβ42 at nanomolar monomer concentration. Quantitative analysis of the AFM data shows that both the number of Aβ42 oligomers and their sizes grow when cholesterol is present. Importantly, the aggregation process is dynamic, so the aggregates assembled on the membrane can dissociate from the bilayer surface into the bulk solution. Computational modeling demonstrated that the lipid bilayer containing cholesterol had an elevated affinity to Aβ42. Moreover, monomers adopted the aggregation-prone conformations present in amyloid fibrils. The results lead to the model for the on-surface aggregation process in which the self-assembly of Aβ oligomers is controlled by the lipid composition of cellular membranes.
Insights
Cholesterol in cell membranes accelerates amyloid beta (1-42) oligomer formation, a key step in Alzheimer's disease (AD). This study reveals how membrane composition drives Aβ42 aggregation at low concentrations.
Area of Science:
- Biochemistry
- Neuroscience
- Materials Science
Background:
- Amyloid beta (1-42) oligomer formation is critical in Alzheimer's disease (AD) pathogenesis.
- The mechanism of Aβ42 aggregation at low physiological concentrations is not fully understood.
- Previous work showed Aβ42 oligomerization occurs on phospholipid membranes at low concentrations.
Purpose of the Study:
- To investigate the role of membrane composition, specifically cholesterol, in controlling Aβ42 aggregation.
- To test the hypothesis that cholesterol insertion into membranes initiates Aβ42 aggregation.
- To elucidate the mechanism of Aβ42 self-assembly on cellular membranes.
Main Methods:
- Atomic force microscopy (AFM) for real-time visualization of Aβ42 aggregation on lipid bilayers.
- Time-lapse AFM imaging to observe dynamic aggregation processes.
- Computational modeling to assess Aβ42 affinity to lipid bilayers with cholesterol.
Main Results:
- Cholesterol significantly enhances Aβ42 aggregation on lipid bilayers even at nanomolar concentrations.
- Both the number and size of Aβ42 oligomers increased in the presence of cholesterol.
- Aβ42 aggregates can dynamically associate and dissociate from the membrane surface.
- Computational models showed increased Aβ42 affinity for cholesterol-containing bilayers, promoting aggregation-prone conformations.
Conclusions:
- Membrane cholesterol content is a critical factor regulating Aβ42 oligomerization.
- Cholesterol initiates and enhances Aβ42 aggregation on cellular membranes at low monomer concentrations.
- This provides a model for on-surface aggregation where lipid composition dictates Aβ self-assembly.
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