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Decongested 2D IR Spectra Reveal N-Terminal Helices in Amyloid Oligomers Associated with Type 2 Diabetes

Shivani T. Shivani, Josée Maurais, Brynn E. LeMasters, Harrison J. Esterly, Martin T. Zanni

Revista con revisión por pares

En palabras de los autores

Abstract Oligomeric peptides are implicated in amyloidosis, yet only a few atomic structures of amyloid oligomers have been identified. Recently, we reported an atomic structural model of human islet amylin polypeptide (hIAPP) oligomer [Shivani, S. T.; et al.Proc. Natl. Acad. Sci. U.S.A.2026, 123, e2528103123.]. The model was generated by trapping the oligomers with three alanine substitutions in a sequence termed 3A-hIAPP. These substitutions neither impact the physiologically critical β-sheet region of hIAPP nor the cytotoxicity and oligomer size measured through biochemical assays. However, their effect on the structure of the N-terminal helices could not be assessed. By modifying our 2D IR spectrometer, we interwove the acquisition of multiple pulse sequences, enabling waiting-time-dependent spectra of hIAPP oligomers to be measured during protein aggregation. Spectra acquired at a waiting time of 1.2 ps are decongested of disordered structures, revealing features originating from the oligomeric N-terminal α-helix and the adjacent kink and disulfide-loop regions. The spectra of hIAPP oligomers closely match those of 3A-hIAPP, strengthening the structural relevance of our atomic model for hIAPP oligomers. These findings also establish a workflow for testing and generating atomic structures of hIAPP oligomers associated with early-onset type 2 diabetes and for oligomers from other amyloid diseases.

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Apareció: jueves, 24 de septiembre. Journal of the American Chemical Society. Revista con revisión por pares.

DOI: 10.1021/jacs.6c16754