HSP10 as a Chaperone for Neurodegenerative Amyloid Fibrils

Johan N K Larsson1, Sofie Nyström1, Per Hammarström1

  • 1Department of Physics, Chemistry and Biology, Linköping University, Linköping, Sweden.

Insights

Heat shock protein 10 (HSP10) influences amyloid fibril formation in neurodegenerative diseases. Low HSP10 concentrations paradoxically promote nucleation, while higher concentrations inhibit fibril growth.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Neuroscience

Background:

  • Neurodegenerative diseases (NDs) involve misfolded protein (MP) accumulation and amyloid fibril formation.
  • Molecular chaperones, like heat shock protein 10 (HSP10), are crucial for maintaining protein homeostasis.
  • HSP10's role as a standalone chaperone in MP aggregation is understudied.

Purpose of the Study:

  • To investigate the in vitro effect of HSP10 on amyloid fibril formation of Alzheimer's disease-associated Aβ1-42.
  • To compare the influence of eukaryotic (human, Drosophila) and prokaryotic (GroES) HSP10.

Main Methods:

  • In vitro fibrillization assays using Aβ1-42 and HuPrP90-231.
  • Sub-stoichiometric concentrations of human, Drosophila, and GroES HSP10 were used.
  • Analysis of fibril formation kinetics (lag-phase, elongation) and structure.

Main Results:

  • Sub-stoichiometric eukaryotic HSP10 significantly altered Aβ1-42 fibril formation and structure, more so than GroES.
  • HSP10 exhibited a dual role: promoting nucleation at low concentrations (shortened lag-phase) and inhibiting at higher concentrations (extended lag/elongation).
  • Sequence similarity between HSP10's mobile loop and amyloidogenic segments suggests competitive binding to fibril ends.

Conclusions:

  • HSP10 acts as a significant molecular chaperone influencing amyloid fibril formation in neurodegenerative disease models.
  • HSP10's unique binding mechanism via mobile loops may be key to its chaperone activity.
  • Further research into HSP10's role in proteostasis is warranted for understanding and treating NDs.

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