Please use this identifier to cite or link to this item: http://hdl.handle.net/123456789/3389
Title: Excitation Energy Migration Unveils Fuzzy Interfaces within the Amyloid Architecture
Authors: Das, Debapriya
Madhu, Priyanka
Avni, A.
Mukhopadhyay, S.
Keywords: Amyloid
Fuzzy Interfaces
Supramolecular architecture
Issue Date: 2020
Publisher: Biophysical Society
Citation: Biophysical Journal 118(11), pp.2621-2626.
Abstract: Amyloid fibrils are highly ordered nanoscopic protein aggregates comprising a cross-β amyloid core and are associated with deadly human diseases. Structural studies have revealed the supramolecular architecture of a variety of disease-associated amyloids. However, the critical role of transient intermolecular interactions between the disordered polypeptide segments of protofilaments in directing the supramolecular structure and nanoscale morphology remains elusive. Here, we present a unique case to demonstrate that interchain excitation energy migration via intermolecular homo-Förster resonance energy transfer can decipher the architecture of amyloid fibrils of human α-synuclein. Site-specific homo-Förster resonance energy transfer efficiencies measured by fluorescence depolarization allowed us to construct a two-dimensional proximity correlation map that defines the supramolecular packing of α-synuclein within the fibrils. These studies captured unique heteroterminal cross talks between the fuzzy interprotofilament interfaces of the parallel-in-register amyloid spines. Our results will find applications in discerning the broader role of protein disorder and fuzziness in steering the distinct polymorphic amyloids that exhibit strain-specific disease phenotypes.
URI: https://www.sciencedirect.com/science/article/pii/S0006349520303374?via%3Dihub
http://hdl.handle.net/123456789/3389
Appears in Collections:Research Articles

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