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Published on: August 16, 2024
Medin Oligomer Membrane Pore Formation: A Potential Mechanism of Vascular Dysfunction
Scott Younger1, Hyunbum Jang2, Hannah A Davies3
1Department of Biomedical Engineering, University of Arizona, Tucson, Arizona.
Abstract:
Medin, a 50-amino-acid cleavage product of the milk fat globule-EGF factor 8 protein, is one of the most common forms of localized amyloid found in the vasculature of individuals older than 50 years. Medin induces endothelial dysfunction and vascular inflammation, yet despite its prevalence in the human aorta and multiple arterial beds, little is known about the nature of its pathology. Medin oligomers have been implicated in the pathology of aortic aneurysm, aortic dissection, and more recently, vascular dementia. Recent in vitro biomechanical measurements found increased oligomer levels in aneurysm patients with altered aortic wall integrity. Our results suggest an oligomer-mediated toxicity mechanism for medin pathology. Using lipid bilayer electrophysiology, we show that medin oligomers induce ionic membrane permeability by pore formation. Pore activity was primarily observed for preaggregated medin species from the growth-phase and rarely for lag-phase species. Atomic force microscopy (AFM) imaging of medin aggregates at different stages of aggregation revealed the gradual formation of flat domains resembling the morphology of supported lipid bilayers. Transmission electron microscopy images showed the coexistence of compact oligomers, largely consistent with the AFM data, and larger protofibrillar structures. Circular dichroism spectroscopy revealed the presence of largely disordered species and suggested the presence of β-sheets. This observation and the significantly lower thioflavin T fluorescence emitted by medin aggregates compared to amyloid-β fibrils, along with the absence of amyloid fibers in the AFM and transmission electron microscopy images, suggest that medin aggregation into pores follows a nonamyloidogenic pathway. In silico modeling by molecular dynamics simulations provides atomic-level structural detail of medin pores with the CNpNC barrel topology and diameters comparable to values estimated from experimental pore conductances.
Insights
Medin oligomers, a common vascular amyloid, form pores in cell membranes, causing dysfunction. This pore formation, observed in older adults, may drive aortic aneurysm and vascular dementia pathology via a non-amyloid pathway.
Area of Science:
- Vascular biology
- Biophysics
- Biochemistry
Background:
- Medin, a cleavage product of MFG-EGF8, is a prevalent vascular amyloid in individuals over 50.
- Medin oligomers are linked to aortic aneurysm, dissection, and vascular dementia.
- The precise mechanism of medin-induced vascular pathology remains unclear.
Purpose of the Study:
- To investigate the molecular mechanism of medin-induced vascular pathology.
- To determine if medin oligomers directly interact with and permeabilize cell membranes.
- To characterize the structural properties of medin aggregates and their aggregation pathway.
Main Methods:
- Lipid bilayer electrophysiology to measure membrane permeability.
- Atomic force microscopy (AFM) and transmission electron microscopy (TEM) for aggregate imaging.
- Circular dichroism (CD) spectroscopy and thioflavin T fluorescence for structural analysis.
- In silico molecular dynamics simulations for atomic-level pore modeling.
Main Results:
- Medin oligomers induce ionic membrane permeability by forming pores.
- Pore formation is predominantly mediated by growth-phase medin aggregates.
- AFM and TEM revealed gradual formation of flat domains and coexistence of oligomers and protofibrils.
- CD and thioflavin T assays suggest a non-amyloidogenic aggregation pathway.
Conclusions:
- Medin oligomers exhibit direct membrane-lytic activity through pore formation.
- This oligomer-mediated pore formation is a potential mechanism for medin-associated vascular diseases.
- Medin aggregation into pores follows a pathway distinct from classical amyloid formation.
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