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Portrait of Sara Snogerup Linse

Sara Linse

Professor

Portrait of Sara Snogerup Linse

Thermodynamic and kinetic design principles for amyloid-aggregation inhibitors

Author

  • Thomas C.T. Michaels
  • Andela Šarić
  • Georg Meisl
  • Gabriella T. Heller
  • Samo Curk
  • Paolo Arosio
  • Sara Linse
  • Christopher M. Dobson
  • Michele Vendruscolo
  • Tuomas P.J. Knowles

Summary, in English

Understanding the mechanism of action of compounds capable of inhibiting amyloid-fibril formation is critical to the development of potential therapeutics against protein-misfolding diseases. A fundamental challenge for progress is the range of possible target species and the disparate timescales involved, since the aggregating proteins are simultaneously the reactants, products, intermediates, and catalysts of the reaction. It is a complex problem, therefore, to choose the states of the aggregating proteins that should be bound by the compounds to achieve the most potent inhibition. We present here a comprehensive kinetic theory of amyloid-aggregation inhibition that reveals the fundamental thermodynamic and kinetic signatures characterizing effective inhibitors by identifying quantitative relationships between the aggregation and binding rate constants. These results provide general physical laws to guide the design and optimization of inhibitors of amyloid-fibril formation, revealing in particular the important role of on-rates in the binding of the inhibitors.

Department/s

  • Biochemistry and Structural Biology
  • MultiPark: Multidisciplinary research focused on Parkinson´s disease

Publishing year

2020-09-29

Language

English

Pages

24251-24257

Publication/Series

Proceedings of the National Academy of Sciences of the United States of America

Volume

117

Issue

39

Document type

Journal article

Publisher

National Academy of Sciences

Topic

  • Biochemistry and Molecular Biology

Keywords

  • Amyloid
  • Drug discovery
  • Inhibition
  • Mathematical model
  • Molecular mechanism

Status

Published

ISBN/ISSN/Other

  • ISSN: 0027-8424