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Updated: Jun 21, 2026

Purification and Aggregation of the Amyloid Precursor Protein Intracellular Domain
Published on: August 28, 2012
Amyloid fibrils formed by selective N-, C-terminal sequences of mouse apolipoprotein A-II
Jinko Sawashita1, Fuyuki Kametani, Kazuhiro Hasegawa
1Department of Aging Biology, Institute on Aging and Adaptation, Shinshu University Graduate School of Medicine, 3-1-1 Asahi, Matsumoto, Nagano 390-8621, Japan. jinkos@shinshu-u.ac.jp
Abstract:
In mice, amyloidogenic type C apolipoprotein A-II (apoA-II) forms amyloid fibrils in age-associated amyloidosis. To understand the mechanism of amyloid fibril formation by apoA-II, we examined the polymerization of synthetic partial peptides of apoA-II in vitro. None of the partial apoA-II peptides polymerized into amyloid fibrils when tested as a single species mixture. We found a unique mechanism in which N- and C-terminal peptides associated into amyloid fibrils in a 1:1 ratio at pH 2.5. The 11-residue amino acid sequence (6-16), which is a common sequence of type B apoA-II and type C apoA-II proteins in amyloidosis-resistant mice and amyloidosis-susceptible mice, respectively, was critical for polymerization into amyloid fibrils. The 18-residue-long amino acid sequence (48-65) is also necessary for nucleation, but not for the extension phase. These findings suggest that there may be different mechanisms underlying the nucleation and extension phases of apoA-II amyloid fibril formation. We also found that amino acid substitutions between type B apoA-II (Pro5, Val38) and type C apoA-II (Gln5, Ala38) did not affect either phase. The strategy of using synthetic partial peptides of amyloidogenic proteins in vitro is a useful system for understanding amyloid fibril formation and for the development of novel therapies.
Insights
Amyloidogenic apolipoprotein A-II (apoA-II) forms amyloid fibrils via a unique mechanism. N- and C-terminal peptides associate at a 1:1 ratio, with specific sequences critical for fibril formation.
Area of Science:
- Biochemistry
- Molecular Biology
- Structural Biology
Background:
- Amyloidosis is associated with the formation of amyloid fibrils.
- Amyloidogenic type C apolipoprotein A-II (apoA-II) forms amyloid fibrils in age-associated amyloidosis in mice.
Purpose of the Study:
- To elucidate the mechanism of amyloid fibril formation by apoA-II.
- To investigate the polymerization of synthetic apoA-II peptides in vitro.
Main Methods:
- In vitro polymerization assays using synthetic partial peptides of apoA-II.
- Analysis of peptide association ratios and critical amino acid sequences.
Main Results:
- No single apoA-II peptide species polymerized into amyloid fibrils.
- N- and C-terminal apoA-II peptides associated in a 1:1 ratio at pH 2.5 to form amyloid fibrils.
- An 11-residue sequence (6-16) was critical for polymerization, while an 18-residue sequence (48-65) was necessary for nucleation but not extension.
Conclusions:
- ApoA-II amyloid fibril formation involves a unique mechanism of N- and C-terminal peptide association.
- Distinct mechanisms may govern the nucleation and extension phases of apoA-II amyloidogenesis.
- In vitro studies with synthetic peptides offer a valuable system for understanding amyloid formation and developing therapies.
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