“Molecular Shakers” as Transmembrane Single‐Molecule Channels Toward 1:1 Cl <sup>−</sup> /K <sup>+</sup> Cotransport

W Wen‐Hui Mi (Beijing National Laboratory for Molecular Sciences Laboratory of Molecular Recognition and Function Institute of Chemistry Chinese Academy of Sciences Beijing China) X Xu‐Dong Wang (Beijing National Laboratory for Molecular Sciences Laboratory of Molecular Recognition and Function Institute of Chemistry Chinese Academy of Sciences Beijing China) Z Zhong‐Wen Chen (Beijing National Laboratory for Molecular Sciences Laboratory of Molecular Recognition and Function Institute of Chemistry Chinese Academy of Sciences Beijing China) Y Yu‐Fei Ao (Beijing National Laboratory for Molecular Sciences Laboratory of Molecular Recognition and Function Institute of Chemistry Chinese Academy of Sciences Beijing China) Q Qi‐Qiang Wang (Beijing National Laboratory for Molecular Sciences Laboratory of Molecular Recognition and Function Institute of Chemistry Chinese Academy of Sciences Beijing China) L Li‐Xia Wang (Huairou Research Center of Institute of Chemistry Chinese Academy of Sciences Beijing China) D De‐Xian Wang (Beijing National Laboratory for Molecular Sciences Laboratory of Molecular Recognition and Function Institute of Chemistry Chinese Academy of Sciences Beijing China)

Abstract

ABSTRACT Cation–chloride cotransporters (CCCs) are an important family of chloride channel proteins that mediate electroneutral transport of Cl − with Na + and/or K + . In this study, we introduced ultracycles (molecular shakers—so named for their cocktail‐shaker‐like shape) designed to mimic the binding sites and functions of KCC1. These ultracycles incorporate both anion (S Cl1 , S Cl2 ) and cation (S K ) binding sites within the single‐molecular backbone. The synthesis was achieved through dynamic nucleophilic aromatic substitution, starting from a rigid‐flexible macrocyclic precursor and diphenol derivatives. Planar lipid bilayer measurements demonstrated that the molecular shakers function as single‐molecule channels, mediating ion transport. By varying the structural features of the lower and larger rims of the macrocycle, as well as the glycol chains and the pH of the bulk solution, we achieved a permeability ratio up to P Cl − / P K + = 0.83.

Article Details

Volume / Issue Vol. 1, Issue 1
Published July 08, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (7)

W

Wen‐Hui Mi

Beijing National Laboratory for Molecular Sciences Laboratory of Molecular Recognition and Function Institute of Chemistry Chinese Academy of Sciences Beijing China

X

Xu‐Dong Wang

Beijing National Laboratory for Molecular Sciences Laboratory of Molecular Recognition and Function Institute of Chemistry Chinese Academy of Sciences Beijing China

Z

Zhong‐Wen Chen

Beijing National Laboratory for Molecular Sciences Laboratory of Molecular Recognition and Function Institute of Chemistry Chinese Academy of Sciences Beijing China

Y

Yu‐Fei Ao

Beijing National Laboratory for Molecular Sciences Laboratory of Molecular Recognition and Function Institute of Chemistry Chinese Academy of Sciences Beijing China

Q

Qi‐Qiang Wang

Beijing National Laboratory for Molecular Sciences Laboratory of Molecular Recognition and Function Institute of Chemistry Chinese Academy of Sciences Beijing China

L

Li‐Xia Wang

Huairou Research Center of Institute of Chemistry Chinese Academy of Sciences Beijing China

D

De‐Xian Wang

Beijing National Laboratory for Molecular Sciences Laboratory of Molecular Recognition and Function Institute of Chemistry Chinese Academy of Sciences Beijing China