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December 4, 2025Angewandte Chemie International Edition3 citationsOpen Access

Photoswitchable Peptides as Molecular Tools to Encode Structural Order and Disorder in Intracellular Assemblies

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JLJulian LinkLBLuca BurgSCSarah Chagri

Key Points

  • Cytotoxicity increases with the trans-isomer's higher aggregation propensity, indicating a link between assembly type and cell viability.
  • Structural dynamics of assemblies switch seamlessly between ordered and disordered states through effective photoswitching mechanisms.
  • This observational analysis highlights how photoswitchable peptides can act as unique molecular tools in supramolecular chemistry.
  • The findings may enable new strategies in synthetic biology and therapeutic development through manipulation of protein assembly.

Abstract

Abstract Understanding how self‐assembled structure formation affects cells remains a central challenge in supramolecular chemistry. However, chemical tools that allow access to both ordered and disordered intracellular assemblies from a single molecular scaffold are rare due to design complexity. Here, we present a photoswitchable isotripeptide incorporating an arylazopyrazole (AAP) unit, which undergoes intracellular cleavage to yield a self‐assembling monomer. Upon photoisomerization, the planar trans ‐isomer forms β ‐sheet‐rich nanofibers with strong aromatic interactions, while the non‐planar cis ‐isomer assembles into disordered, random‐coil aggregates lacking aromatic contribution. The structural dynamics of the assemblies are demonstrated by repeated photoswitching between the two states in buffered conditions. Notably, A549 cancer cell viability correlates with the isomer‐dependent assembly behavior and critical aggregation concentrations (CACs): the trans ‐isomer, with higher aggregation propensity, exhibits greater cytotoxicity. This photoswitchable peptide system thus provides a powerful platform with fast, reversible and robust switching kinetics, long isomer half‐lives, and high photostability to probe the intracellular consequences of supramolecular order and disorder using a single molecular scaffold.

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Cite This Study

Link et al. (2025) studied this question.

synapsesocial.com/papers/694023f32d562116f28fd9c4https://doi.org/10.1002/anie.202514781
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