• Title/Summary/Keyword: Aβ42 fibrils

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Polyphenolic Biflavonoids Inhibit Amyloid-Beta Fibrillation and Disaggregate Preformed Amyloid-Beta Fibrils

  • Choi, Erika Y.;Kang, Sam Sik;Lee, Sang Kook;Han, Byung Hee
    • Biomolecules & Therapeutics
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    • v.28 no.2
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    • pp.145-151
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    • 2020
  • Alzheimer's disease (AD) is a devastating neurodegenerative disease and a major cause of dementia in elderly individuals worldwide. Increased deposition of insoluble amyloid β (Aβ) fibrils in the brain is thought be a key neuropathological hallmark of AD. Many recent studies show that natural products such as polyphenolic flavonoids inhibit the formation of insoluble Aβ fibrils and/or destabilize β-sheet-rich Aβ fibrils to form non-cytotoxic aggregates. In the present study, we explored the structure-activity relationship of naturally-occurring biflavonoids on Aβ amyloidogenesis utilizing an in vitro thioflavin T assay with Aβ1-42 peptide which is prone to aggregate more rapidly to fibrils than Aβ1-40 peptide. Among the biflavonoids we tested, we found amentoflavone revealed the most potent effects on inhibiting Aβ1-42 fibrillization (IC50: 0.26 µM), as well as on disassembling preformed Aβ1-42 fibrils (EC50: 0.59 µM). Our structure-activity relationship study suggests that the hydroxyl groups of biflavonoid compounds play an essential role in their molecular interaction with the dynamic process of Aβ1-42 fibrillization. Our atomic force microscopic imaging analysis demonstrates that amentoflavone directly disrupts the fibrillar structure of preformed Aβ1-42 fibrils, resulting in conversion of those fibrils to amorphous Aβ1-42 aggregates. These results indicate that amentoflavone affords the most potent anti-amyloidogenic effects on both inhibition of Aβ1-42 fibrillization and disaggregation of preformed mature Aβ1-42 fibrils.

Distinctive contribution of two additional residues in protein aggregation of Aβ42 and Aβ40 isoforms

  • Dongjoon Im;Tae Su Choi
    • BMB Reports
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    • v.57 no.6
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    • pp.263-272
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    • 2024
  • Amyloid-β (Aβ) is one of the amyloidogenic intrinsically disordered proteins (IDPs) that self-assemble to protein aggregates, incurring cell malfunction and cytotoxicity. While Aβ has been known to regulate multiple physiological functions, such as enhancing synaptic functions, aiding in the recovery of the blood-brain barrier/brain injury, and exhibiting tumor suppression/antimicrobial activities, the hydrophobicity of the primary structure promotes pathological aggregations that are closely associated with the onset of Alzheimer's disease (AD). Aβ proteins consist of multiple isoforms with 37-43 amino acid residues that are produced by the cleavage of amyloid-β precursor protein (APP). The hydrolytic products of APP are secreted to the extracellular regions of neuronal cells. Aβ 1-42 (Aβ42) and Aβ 1-40 (Aβ40) are dominant isoforms whose significance in AD pathogenesis has been highlighted in numerous studies to understand the molecular mechanism and develop AD diagnosis and therapeutic strategies. In this review, we focus on the differences between Aβ42 and Aβ40 in the molecular mechanism of amyloid aggregations mediated by the two additional residues (Ile41 and Ala42) of Aβ42. The current comprehension of Aβ42 and Aβ40 in AD progression is outlined, together with the structural features of Aβ42/Aβ40 amyloid fibrils, and the aggregation mechanisms of Aβ42/Aβ40. Furthermore, the impact of the heterogeneous distribution of Aβ isoforms during amyloid aggregations is discussed in the system mimicking the coexistence of Aβ42 and Aβ40 in human cerebrospinal fluid (CSF) and plasma.

Synthesis of Functionalized Benzoxazoles and Their Binding Affinities to A β42 Fibrils

  • Chun, Young-Shin;Lim, Soo-Jeong;Oh, Seung-Jun;Moon, Dae-Hyuk;Kim, Dong-Jin;Cho, Cheon-Gyu;Yoo, Kyung-Ho
    • Bulletin of the Korean Chemical Society
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    • v.29 no.9
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    • pp.1765-1768
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    • 2008
  • Functionalized benzoxazole derivatives were designed and synthesized based on the structural features of PIB and FDDNP, which show excellent binding affinities to aggregated A$\beta$ 42 fibrils. All the synthesized compounds were evaluated by competitive binding assay against aggregated A$\beta$ 42 fibrils using [$^{125}$I]TZDM and displayed good in vitro binding affinities with Ki values (0.47-15.3 nM) from subnanomolar to nanomolar range. Among them, benzoxazoles 1f and 1a having malononitrile and ester moieties at C-6 exhibited superior binding affinities ($K_i$ = 0.47 and 0.61 nM, respectively) to PIB ($K_i$ = 0.77 nM).