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Characterizing Individual Protein Aggregates by Infrared Nanospectroscopy and Atomic Force Microscopy
Published on: September 12, 2019
Morphology and mechanical properties of multi-stranded amyloid fibrils probed by atomistic and coarse-grained
Gwonchan Yoon1, Myeongsang Lee, Kyungwoo Kim
1Department of Mechanical Engineering, Korea University, Seoul 02841, Korea. Department of Mechanical Engineering, Boston University, Boston, MA 02115, USA.
Abstract:
Amyloid fibrils are responsible for pathogenesis of various diseases and exhibit the structural feature of an ordered, hierarchical structure such as multi-stranded helical structure. As the multi-strandedness of amyloid fibrils has recently been found to be highly correlated with their toxicity and infectivity, it is necessary to study how the hierarchical (i.e. multi-stranded) structure of amyloid fibril is formed. Moreover, although it has recently been reported that the nanomechanics of amyloid proteins plays a key role on the amyloid-induced pathogenesis, a critical role that the multi-stranded helical structure of the fibrils plays in their nanomechanical properties has not fully characterized. In this work, we characterize the morphology and mechanical properties of multi-stranded amyloid fibrils by using equilibrium molecular dynamics simulation and elastic network model. It is shown that the helical pitch of multi-stranded amyloid fibril is linearly proportional to the number of filaments comprising the amyloid fibril, and that multi-strandedness gives rise to improving the bending rigidity of the fibril. Moreover, we have also studied the morphology and mechanical properties of a single protofilament (filament) in order to understand the effect of cross-β structure and mutation on the structures and mechanical properties of amyloid fibrils. Our study sheds light on the underlying design principles showing how the multi-stranded amyloid fibril is formed and how the structure of amyloid fibrils governs their nanomechanical properties.
Insights
The multi-stranded structure of amyloid fibrils, linked to disease, is formed by filaments. This structure enhances fibril rigidity and influences nanomechanical properties, crucial for understanding disease pathogenesis.
Area of Science:
- Biophysics
- Materials Science
- Structural Biology
Background:
- Amyloid fibrils are implicated in various diseases and possess hierarchical, multi-stranded helical structures.
- The degree of multi-strandedness correlates with amyloid fibril toxicity and infectivity.
- The nanomechanical properties of amyloid proteins are critical in pathogenesis, but the role of multi-stranded helical structure remains unclear.
Purpose of the Study:
- To characterize the morphology and mechanical properties of multi-stranded amyloid fibrils.
- To elucidate the formation principles of hierarchical amyloid fibril structures.
- To understand how fibril structure influences nanomechanical properties relevant to disease.
Main Methods:
- Equilibrium molecular dynamics simulations.
- Elastic network modeling.
- Characterization of single protofilaments to assess structural effects.
Main Results:
- Helical pitch of multi-stranded amyloid fibrils scales linearly with the number of constituent filaments.
- Multi-strandedness enhances the bending rigidity of amyloid fibrils.
- Cross-beta structure and mutations impact fibril structure and mechanical properties.
Conclusions:
- The study reveals design principles for multi-stranded amyloid fibril formation.
- Fibril nanomechanical properties are governed by their hierarchical structure.
- Understanding these structure-property relationships is key to addressing amyloid-related diseases.
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