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December 4, 2025Angewandte Chemie International Edition7 citations

Flexible Crown‐Ether Polyimides Break the K + /Na + Selectivity Barrier in Artificial K + Channels

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QLQing‐Yan Liu

Key Points

  • Channel 4 achieved unprecedented K+/Na+ selectivity of 153.2, outperforming gramicidin A by offering enhanced potassium transport.
  • Notably, three polymer channels exhibited K+ conductance levels ranging from 36.8 to 47.0 pS, markedly high for artificial systems.
  • Our innovative design integrates flexible polyimide backbones and tailored alkyl linkers to optimize ion transport characteristics.
  • The findings may enable advancements in biomimetic membrane technologies, advocating for enhanced therapeutic strategies and biosensing applications.

Abstract

Abstract Natural potassium channels such as KcsA exhibit extraordinary K + /Na + selectivity (>1000), whereas the best biomimetic counterparts have reached only 41.3. To close this performance gap, we developed a modular design comprising three tunable components: a flexible aliphatic polyimide ( PI ) backbone, variable alkyl linkers (C n H 2n+1 , n = 4–16), and ion‐binding 18‐crown‐6 units. This architecture promotes robust membrane integration via the PI scaffold and precise control of crown ether conformation and spatial arrangement through linker optimization, enabling exceptionally selective and efficient K + transport. Of four synthesized polymer channels, three display high K + conductance (36.8–47.0 pS) —up to twice that of gramicidin A (23.2 pS) —together with K + /Na + selectivity exceeding 100. Notably, channel 4 , incorporating the longest C 16 H 33 linker, achieves an unprecedented selectivity of 153.2 ± 5.3. This synergistic combination of ultrahigh selectivity and superior conductance establishes a new benchmark for artificial potassium channels and provides a versatile platform for biomimetic membrane technologies, channel‐targeted therapeutics, and biosensing applications.

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Cite This Study

Qing‐Yan Liu (2025) studied this question.

synapsesocial.com/papers/694023f32d562116f28fd99dhttps://doi.org/10.1002/anie.202520146
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