Stability of Aβ (1-42) peptide fibrils as consequence of environmental modifications

Maria Gregori1, Valeria Cassina, Doriano Brogioli

  • 1Department of Experimental Medicine, University of Milano-Bicocca, via Cadore 48, 20052, Monza, MI, Italy. m.gregori1@campus.unimib.it

Insights

Changes in pH and ionic strength fragment long beta-amyloid (Aβ) fibrils and cause aggregation. This impacts Alzheimer disease (AD) research by showing fibril structure depends on the chemical environment, not the initial protocol.

Area of Science:

  • Neuroscience
  • Biochemistry
  • Materials Science

Background:

  • Beta-amyloid (Aβ) peptide aggregation is central to Alzheimer disease (AD) pathogenesis.
  • In vitro studies often use low pH and ionic strength to form long Aβ fibrils.
  • The behavior of these fibrils upon transfer to physiological conditions is not well understood.

Purpose of the Study:

  • To investigate the morphological changes of Aβ fibrils when transferred from acidic to physiological conditions.
  • To determine the roles of pH and ionic strength in these transformations.
  • To assess the impact of these changes on Aβ fibril toxicity and experimental reproducibility.

Main Methods:

  • Incubation of Aβ peptide at low pH and ionic strength to form fibrils.
  • Transfer of pre-formed fibrils to physiological pH and ionic strength.
  • Morphological analysis of fibrils under varying chemical conditions.
  • Cell culture experiments to assess fibril toxicity.

Main Results:

  • Increased pH caused fragmentation of long Aβ fibrils.
  • Increased ionic strength induced aggregation of fibril fragments.
  • Similar short fibril aggregates formed under physiological conditions, irrespective of initial protocol.
  • Toxicity remained consistent across different initial fibril morphologies after transfer to physiological buffer.

Conclusions:

  • Aβ fibril morphology is primarily determined by the final chemical environment, not the in vitro fibrillation protocol.
  • Understanding these transformations is crucial for interpreting biological studies using in vitro-formed Aβ fibrils.
  • The findings have significant implications for Alzheimer disease research methodology.

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