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Updated: Aug 24, 2026

Purification and Aggregation of the Amyloid Precursor Protein Intracellular Domain
Published on: August 28, 2012
Fine-Tuning hIAPP Amyloidogenesis: Probing Molecular Mechanisms via Fluorinated Core Substitutions
Artem Pavlov1, Hossein Batebi2, Nicklas Österlund1
1Department of Chemistry and Biochemistry, Freie Universität Berlin, Berlin 14195, Germany.
None:
Aggregation of human islet amyloid polypeptide (hIAPP, amylin) into amyloid fibrils is a hallmark of β-cell dysfunction in type 2 diabetes, yet the molecular determinants governing its aggregation pathways remain incompletely understood. Here, we investigate how systematic fluorination of Phe23a key aromatic residue within the amyloidogenic coremodulates intra- and intermolecular interactions and thereby probes hIAPP self-assembly under physiologically relevant acidic and neutral pH conditions. Using a combination of Thioflavin T kinetics, scaling-exponent analysis, pyrene fluorescence, ion mobility-mass spectrometry, circular dichroism, 19F NMR spectroscopy, and molecular dynamics simulations, we show that fluorination of Phe23 reshapes aggregation behavior in a highly nonadditive manner. While wild-type and minimally fluorinated variants, at neutral pH, follow the surface-catalyzed secondary nucleation mechanism discussed well in the literature, higher degrees of fluorination progressively reduce monomer dependence and give rise to pronounced concentration-dependent, self-inhibiting aggregation behavior. Under acidic conditions, protonation of His18 leads to a divergent concentration dependence, with reduced monomer dependence for wild-type and minimally fluorinated peptides and enhanced concentration sensitivity for tetra- and penta-fluorinated variants. These concentration dependencies reflect differences in the conformational accessibility, flexibility, and oligomerization efficiency required for productive fibril formation under each pH condition. Together, these results identify Phe23 as a molecular switch that couples local interactions to global aggregation pathways and demonstrate how subtle chemical and environmental perturbations can modulate the productivity of hIAPP fibril formation.
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