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Updated: Jun 10, 2026

Characterization of pH-Dependent Reversible Self-Assembly of Amyloid Beta 1-40-Coated Gold Colloids
Published on: March 21, 2025
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
Abstract:
β-Amyloid peptide (Aβ) plays a key role in the pathogenesis of Alzheimer disease (AD). Monomeric Aβ undergoes aggregation, forming oligomers and fibrils, resulting in the deposition of plaques in the brain of AD patients. A widely used protocol for fibril formation in vitro is based on incubation of the peptide at low pH and ionic strength, which generates Aβ fibrils several microns long. What happens to such fibrils once they are brought to physiological pH and ionic strength for biological studies is not fully understood. In this investigation, we show that these changes strongly affect the morphology of fibrils, causing their fragmentation into smaller ones followed by their aggregation into disordered structures. We show that an increase in pH is responsible for fibril fragmentation, while increased ionic strength is responsible for the aggregation of fibril fragments. This behavior was confirmed on different batches of peptide either produced by the same company or of different origin. Similar aggregates of short fibrils are obtained when monomeric peptide is incubated under physiological conditions of pH and ionic strength, suggesting that fibril morphology is independent of the fibrillation protocol but depends on the final chemical environment. This was also confirmed by experiments with cell cultures showing that the toxicity of fibrils with different initial morphology is the same after addition to the medium. This information is of fundamental importance when Aβ fibrils are prepared in vitro at acidic pH and then diluted into physiological buffer for biological investigations.
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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