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Human pancreatitis-associated protein forms fibrillar aggregates with a native-like conformation
Journal article   Open access   Peer reviewed

Human pancreatitis-associated protein forms fibrillar aggregates with a native-like conformation

Meng-Ru Ho, Yuan-Chao Lou, Wen-Chang Lin, Ping-Chiang Lyu, Wei-Ning Huang and Chinpan Chen
Journal of Biological Chemistry, Vol.281(44), pp.33566-33576
03/11/2006

Abstract

Human pancreatitis-associated protein was identified in pathognomonic lesions of Alzheimer disease, a disease characterized by the presence of filamentous protein aggregates. Here, we showed that at physiological pH, human pancreatitis-associated protein forms non-Congo Red-binding, proteinase K-resistant fibrillar aggregates with diameters from 6 up to as large as 68 nm. Interestingly, circular dichroism and Fourier transform infrared spectra showed that, unlike typical amyloid fibrils, which have a cross-β-sheet structure, these aggregates have a very similar secondary structure to that of the native protein, which is composed of two α-helices and eight β-strands, as determined by NMR techniques. Surface structure analysis showed that the positively charged and negatively charged residues were clustered on opposite sides, and strong electrostatic interactions between molecules were therefore very likely, which was confirmed by cross-linking experiments. In addition, several hydrophobic residues were found to constitute a continuous hydrophobic surface. These results and protein aggregation prediction using the TANGO algorithm led us to synthesize peptide Thr 84 to Ser 116 , which, very interestingly, was found to form amyloid-like fibrils with a cross-β structure. Thus, our data suggested that human pancreatitis- associated protein fibrillization is initiated by protein aggregation primarily because of electrostatic interactions, and the loop from residues 84 to 116 may play an important role in the formation of fibrillar aggregates with a native-like conformation. © 2006 by The American Society for Biochemistry and Molecular Biology, Inc.
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https://doi.org/10.1074/jbc.M604513200View
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