Mechanical and thermodynamic properties of Aβ<sub>42</sub> , Aβ<sub>40</sub> and α-synuclein fibrils from molecular-scale simulation
ORAL
Abstract
Atomic force microscopy (AFM) is a versatile tool to characterise the mechanical properties of biological systems. However, AFM deformations are tiny, which makes impossible the analysis of the mechanical response by experiment. Here, we have employed a simulation protocol to determine the elastic properties of several biopolymers (i.e. biological fibrils) . For these systems, the simulation approach is sufficient to provide reliable values for three different types of elastic deformation, i.e. tensile (YL), shear (S), and indentation (YT). Our results enable the comparison of the mechanical properties of these fibrils. In particular, we find a significant elastic anisotropy between axial and transverse directions for all systems. In addition, our methodology is sensitive to molecular packing of the fibrils . Interestingly, our results suggest a significant correlation between mechanical stability and aggregation propensity (rate) in amyloid systems, that is, the higher the mechanical stability the faster the fibril formation takes place.
*This research has been supported by the National Science Centre, Poland, under grant No. 2017/26/D/NZ1/00466 and the European Union’s Horizon 2020 research and innovation programme under the Marie Sklodowska-Curie grant agreement No. 665778.
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Presenters
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Adolfo Poma
- Biosystems and Soft Matter, Polish Academy of Sciences