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DOE OSTI · 3004229

Cryo-EM Visualization of Intermolecular π-Electron Interactions within π-Conjugated Peptidic Supramolecular Polymers

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Abstract

The self-assembly of “π-peptides” – molecules with π-electron cores substituted with two or more oligopeptide chains – brings organic electronic function into biologically relevant nanomaterials. π-Peptides assemble into fibrillar nanomaterials as driven by enthalpic peptide-based hydrogen bonding networks and pi-core-based quadrupolar interactions. A large body of spectroscopic, morphological and computational studies informs on the nature of the self-assembly process and the resulting nanostructures, but detailed structural information has remained elusive. Here, inspired by the recent use of cryogenic electron microscopy (cryo-EM) to provide high-resolution structures for synthetic peptide nanomaterials, we present here the use of cryo-EM to offer ca. 3 Å resolution of π-peptide nanomaterial assemblies, visualizing for the first time the nature of the intermolecular π-core electronic interactions responsible for energy transport through these supramolecular materials.

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Rich-New, Shane T. [University of Alabama at Birmingham, AL (United States)], Wang, Runlai [Johns Hopkins University, Baltimore, MD (United States)], Zia, Ayisha [University of Alabama at Birmingham, AL (United States)], Wang, Fengbin [University of Alabama at Birmingham, AL (United States)] (ORCID:000000031008663X), Tovar, John D. [Johns Hopkins University, Baltimore, MD (United States)] (ORCID:0000000296502210). 2025-07-21. Cryo-EM Visualization of Intermolecular π-Electron Interactions within π-Conjugated Peptidic Supramolecular Polymers. https://doi.org/10.1021/acsmacrolett.5c00360

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