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Portrait of Sara Snogerup Linse

Sara Linse

Professor

Portrait of Sara Snogerup Linse

Aggregate Size Dependence of Amyloid Adsorption onto Charged Interfaces

Author

  • Giulio Tesei
  • Erik Hellstrand
  • Kalyani Sanagavarapu
  • Sara Linse
  • Emma Sparr
  • Robert Vácha
  • Mikael Lund

Summary, in English

Amyloid aggregates are associated with a range of human neurodegenerative disorders, and it has been shown that neurotoxicity is dependent on aggregate size. Combining molecular simulation with analytical theory, a predictive model is proposed for the adsorption of amyloid aggregates onto oppositely charged surfaces, where the interaction is governed by an interplay between electrostatic attraction and entropic repulsion. Predictions are experimentally validated against quartz crystal microbalance-dissipation experiments of amyloid beta peptides and fragmented fibrils in the presence of a supported lipid bilayer. Assuming amyloids as rigid, elongated particles, we observe nonmonotonic trends for the extent of adsorption with respect to aggregate size and preferential adsorption of smaller aggregates over larger ones. Our findings describe a general phenomenon with implications for stiff polyions and rodlike particles that are electrostatically attracted to a surface.

Department/s

  • Theoretical Chemistry
  • Biophysical Chemistry
  • Biochemistry and Structural Biology
  • Physical Chemistry
  • eSSENCE: The e-Science Collaboration
  • MultiPark: Multidisciplinary research focused on Parkinson´s disease

Publishing year

2018-01-30

Language

English

Pages

1266-1273

Publication/Series

Langmuir

Volume

34

Issue

4

Document type

Journal article

Publisher

The American Chemical Society (ACS)

Topic

  • Physical Chemistry

Status

Published

ISBN/ISSN/Other

  • ISSN: 0743-7463