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Analysis of β-Amyloid-induced Abnormalities on Fibrin Clot Structure by Spectroscopy and Scanning Electron Microscopy
Published on: November 30, 2018
Ultrasonication-induced amyloid fibril formation of beta2-microglobulin
Yumiko Ohhashi1, Miho Kihara, Hironobu Naiki
1Institute for Protein Research, Osaka University, and CREST, Japan Science and Technology Agency, Yamadaoka 3-2, Suita, Osaka 565-0871, Japan.
Abstract:
To obtain insight into the mechanism of fibril formation, we examined the effects of ultrasonication, a strong agitator, on beta2-microglobulin (beta2-m), a protein responsible for dialysis-related amyloidosis. Upon sonication of an acid-unfolded beta2-m solution at pH 2.5, thioflavin T fluorescence increased markedly after a lag time of 1-2 h with a simultaneous increase of light scattering. Atomic force microscopy images showed the formation of a large number of short fibrils 3 nm in diameter. When the sonication-induced fibrils were used as seeds in the next seeding experiment at pH 2.5, a rapid and intense formation of long fibrils 3 nm in diameter was observed demonstrating seed-dependent fibril growth. We then examined the effects of sonication on the native beta2-m at neutral pH, conditions under which amyloid deposits occur in patients. In the presence of 0.5 mm sodium dodecyl sulfate, a model compound of potential trigger and stabilizer of amyloid fibrils in patients, a marked increase of thioflavin T fluorescence was observed after 1 day of sonication at pH 7.0. The products of sonication caused the accelerated fibril formation at pH 7.0. Atomic force microscopy images showed that the fibrils formed at pH 7.0 have a diameter of more than 7 nm, thicker than those prepared at pH 2.5. These results indicate that ultrasonication is one form of agitation triggering the formation of amyloid fibrils of beta2-m, producing fibrils adapted to the respective pH.
Insights
Ultrasonication triggers beta2-microglobulin (beta2-m) fibril formation, mimicking dialysis-related amyloidosis. This agitation produces amyloid fibrils adapted to specific pH conditions, offering insights into disease mechanisms.
Area of Science:
- Biochemistry
- Structural Biology
- Medical Research
Background:
- Beta2-microglobulin (beta2-m) is implicated in dialysis-related amyloidosis.
- Understanding the mechanism of beta2-m fibril formation is crucial for disease insight.
Purpose of the Study:
- To investigate the role of ultrasonication as an agitator in beta2-m fibril formation.
- To explore the characteristics of beta2-m fibrils formed under different pH conditions.
Main Methods:
- Sonication of beta2-m solutions at acidic (pH 2.5) and neutral (pH 7.0) conditions.
- Monitoring fibril formation using Thioflavin T fluorescence and light scattering.
- Characterizing fibril morphology via Atomic Force Microscopy (AFM).
- Seed-dependent fibril growth experiments.
Main Results:
- Sonication at pH 2.5 induced short beta2-m fibrils (3 nm diameter) after a lag phase.
- These sonication-induced fibrils accelerated fibril formation in subsequent seeding experiments.
- Sonication at pH 7.0, in the presence of sodium dodecyl sulfate, induced thicker beta2-m fibrils (>7 nm diameter).
- Fibril formation was observed to be pH-dependent.
Conclusions:
- Ultrasonication acts as a potent trigger for beta2-m amyloid fibril formation.
- The process generates amyloid fibrils with distinct morphologies depending on the pH.
- Findings provide mechanistic insights into beta2-m amyloidogenesis relevant to dialysis patients.
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