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Small· 2026Q1

Programmable Chirality Transfer: Seeding‐Directed Co‐Assembly of Functional Molecules With Amyloid Frameworks

Aleksandra Kołodziejczyk, Joanna Mazurkiewicz, Andrzej J. Kałka, Agnieszka Kaczor

Short summary

Researchers developed a universal strategy to transfer chirality from amyloid fibrils to achiral functional molecules, achieving induced electronic circular dichroism (IECD) with g up to 1.3 × 10⁻², and IVCD with g VCD of 1.5 × 10⁻³. This method uses seeding-directed co-assembly, allowing tunable control over the chiroptical properties of hybrid nanomaterials.

AI-generated from the title and abstract; the full text is not read.

Key points

  • Developed a universal strategy for co-assembling achiral functional molecules with amyloid fibrils.
  • Achieved chirality transfer from amyloid frameworks to co-assembled molecules, evidenced by IECD (g up to 1.3 × 10⁻²) and IVCD (g VCD of 1.5 × 10⁻³).
  • The process is tunable by dye concentration and solvent type, controlling hierarchical organization and chiroptical properties.
  • Establishes amyloid fibrils as versatile chiral scaffolds for designing hybrid nanomaterials.

AI-generated from the title and abstract; the full text is not read.

Abstract

ABSTRACT We report a highly effective and universal strategy for linking small achiral functional molecules with amyloid fibrils, enabling efficient transfer of chirality from the chiral amyloid network to supramolecularly co‐assembled entities. This seeding‐and‐co‐assembly approach, based on incorporating functional molecules (e.g., dyes) during ongoing seed‐directed amyloid formation, facilitates their templating by the amyloid framework while constraining fibril morphological diversity through suppression of secondary nucleation. Chirality transfer is evidenced by pronounced induced electronic circular dichroism (IECD) with anisotropy factor (g) reaching up to 1.3 × 10 − 2 (g ECD ) and anomalously high and previously unreported induced vibrational circular dichroism (IVCD) with g VCD of 1.5 × 10 − 3 . The acquired handedness arises either from supramolecular ordering of flexible molecules on the fibril surface or from incorporation of more rigid pigment molecules into the amyloid framework. Importantly, this process is tunable: dye concentration and solvent type act as programmable parameters that modulate hierarchical organization and chiroptical properties of the resulting assemblies. Overall, this strategy establishes amyloid fibrils as versatile chiral scaffolds for the rational design of hybrid nanomaterials exhibiting strong circular dichroism and/or circularly polarized luminescence (CPL).

The authors' abstract, as published at the source. Small, 2026 · DOI ↗

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Field: Biomaterials

BiomaterialsMaterials Science