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Published on: December 19, 2015
Pyroglutamylated amyloid-β peptide reverses cross β-sheets by a prion-like mechanism
Jason O Matos1, Greg Goldblatt, Jaekyun Jeon
1Biotechnology Graduate Program, University of Central Florida , 4000 Central Florida Boulevard, Orlando, Florida 32816, United States.
Abstract:
The amyloid hypothesis causatively relates the fibrillar deposits of amyloid β peptide (Aβ) to Alzheimer's disease (AD). More recent data, however, identify the soluble oligomers as the major cytotoxic entities. Pyroglutamylated Aβ (pE-Aβ) is present in AD brains and exerts augmented neurotoxicity, which is believed to result from its higher β-sheet propensity and faster fibrillization. While this concept is based on a set of experimental results, others have reported similar β-sheet contents in unmodified and pyroglutamylated Aβ, and slower aggregation of pE-Aβ as compared to unmodified Aβ, leaving the issue unresolved. Here, we assess the structural differences between Aβ and pE-Aβ peptides that may underlie their distinct cytotoxicities. Transmission electron microscopy identifies a larger number of prefibrillar aggregates of pE-Aβ at early stages of aggregation and suggests that pE-Aβ affects the fibrillogenesis even at low molar fractions. Circular dichroism and FTIR data indicate that while the unmodified Aβ readily forms β-sheet fibrils in aqueous media, pE-Aβ displays increased α-helical and decreased β-sheet propensity. Moreover, isotope-edited FTIR spectroscopy shows that pE-Aβ reverses β-sheet formation and hence fibrillogenesis of the unmodified Aβ peptide via a prion-like mechanism. These data provide a novel structural mechanism for pE-Aβ hypertoxicity; pE-Aβ undergoes faster formation of prefibrillar aggregates due to its increased hydrophobicity, thus shifting the initial stages of fibrillogenesis toward smaller, hypertoxic oligomers of partial α-helical structure.
Insights
Pyroglutamylated amyloid-beta (pE-Aβ) peptides form toxic oligomers faster than unmodified Aβ. This study reveals pE-Aβ
Area of Science:
- Neuroscience
- Biochemistry
- Structural Biology
Background:
- Alzheimer's disease (AD) is linked to amyloid-beta (Aβ) deposits.
- Soluble Aβ oligomers are major cytotoxic entities in AD.
- Pyroglutamylated Aβ (pE-Aβ) exhibits enhanced neurotoxicity, but its aggregation mechanism remains debated.
Purpose of the Study:
- To investigate structural differences between Aβ and pE-Aβ.
- To elucidate the mechanism behind pE-Aβ's augmented neurotoxicity.
Main Methods:
- Transmission electron microscopy (TEM) for aggregate visualization.
- Circular dichroism (CD) and Fourier-transform infrared (FTIR) spectroscopy for structural analysis.
- Isotope-edited FTIR spectroscopy to study fibrillogenesis mechanisms.
Main Results:
- TEM revealed more pE-Aβ prefibrillar aggregates at early stages.
- CD and FTIR showed pE-Aβ has increased α-helical and decreased β-sheet propensity compared to Aβ.
- Isotope-edited FTIR indicated pE-Aβ inhibits Aβ fibrillogenesis via a prion-like mechanism.
Conclusions:
- pE-Aβ forms prefibrillar aggregates more rapidly due to increased hydrophobicity.
- This accelerates the formation of smaller, hypertoxic oligomers with partial α-helical structure.
- A novel structural mechanism for pE-Aβ hypertoxicity is proposed, impacting Alzheimer's disease pathogenesis.
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