Abstract
The suprastructural integrity of peptide self-assemblies is driven by an intricate array of cohesive interactions that guide and maintain a hierarchical order. Seemingly minor alterations to atomic arrangement, such as substitution with D-amino acids, can dramatically affect assembly potential and resultant architecture. When a primary sequence is comprised of consecutive identical motifs, “block heterochiral” peptides can be generated by partitioning chiral inversions according to these underlying elementary units. In this work, we present a combinatorial exploration of all triblock chiral patterns for the model β-sheet-forming peptide KFE12 (Ac-(FKFE)3-NH2). Analysis of the four resulting enantiomer pairs reveals that each produces a unique morphology, ranging from minimal 4-nm-wide fibrils to micron-scale semi-structured aggregates. Our investigation of these variants illustrates a combination of conserved and divergent hierarchical features, reflecting complex interplay between persistent fundamental forces and the unique spatial implications of blockwise intramolecular chiral interfaces.
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CITATION STYLE
O’Neill, C. L., Fascetti, J. L., Clapacs, Z., Kaplita, L. K., Liu, C. Y., Kim, D., … Rudra, J. S. (2025). Modulating Peptide Self-Assembly via Triblock Chiral Patterning. Chemistry - A European Journal, 31(37). https://doi.org/10.1002/chem.202404603
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