TASK2‐Inspired pH‐Gating Polymeric Nanochannels with Multiple Interconvertible Permeability States by Synergistic Regulation of Conformation and Charge

S Shengyang Zhou (State Key Laboratory of Fine Chemicals) F Fengyu Ai (State Key Laboratory of Fine Chemicals Frontier Science Center for Smart Materials Dalian University of Technology Dalian 116024 P.R. China) Z Zihe Song (Frontiers Science Center for Flexible Electronics, Xi’an Institute of Flexible Electronics & Xi’an Institute of Biomedical Materials and Engineering, Northwestern Polytechnical University, 127 West Youyi Road, Xi’an 710072, China) G Guangpeng Ma (State Key Laboratory of Fine Chemicals Frontier Science Center for Smart Materials Dalian University of Technology Dalian 116024 P.R. China) D Dehua Huang (Laboratory of Bio-inspired Smart Interface Science, Technical Institute of Physics and Chemistry) H Huiting Yu (Laboratory of Polymer Ecomaterials Changchun Institute of Applied Chemistry Chinese Academy of Sciences Changchun 130022 P.R. China) Q Qian Liu X Xiangyu Kong L Liping Wen (Laboratory of Bio-inspired Smart Interface Science, Technical Institute of Physics and Chemistry)

Abstract

AbstractBiological ion channels can regulate finely the ion transmembrane permeation, with superhigh ion selectivity and on–off ion flux in response to external stimuli, for signal transduction and energy conversion. However, fabricating smart artificial nanochannels with analogous functions remain challenging by single design of structure or charge property. In vivo, function basis of pH‐gated TWIK‐related acid‐sensitive K+ channel 2 (TASK2) channels is attributed to synergy control of geometrical conformation and surface potential for filter gates. With this inspiration, we report an extrinsic‐gate composite strategy to construct biomimetic responsive nanochannels, based on dye‐loading branched poly(piperidine)s. Two nanochannel models, negatively‐charged large pores (0.76 nm) and positively‐charged small pores (0.49 nm), can be switched quickly by external pH stimuli, due to protonation/deprotonation and conformation change of gates. Thereby, symmetric and asymmetric pH stimuli at the two sides of nanochannels achieve four distinct permeability states to various ions, respectively, to mimic inactivated, inhibited, rest, and activated states of TASK2 channels. Applying for salinity‐gradient energy conversion, the high‐selectivity/high‐flux states (SNa+/Cl−∼3332) and low‐selectivity and low‐flux permeability states (SNa+/Cl−∼0.33) act as an on–off switch of salinity‐gradient energy nanogenerator, with superhigh energy conversion efficiency of ∼50%. This work suggests the potential of extrinsic‐gate composite nanochannels for in vitro biomimetic applications.

Article Details

Volume / Issue Vol. 64, Issue 43
Published October 20, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (9)

S

Shengyang Zhou

State Key Laboratory of Fine Chemicals

F

Fengyu Ai

State Key Laboratory of Fine Chemicals Frontier Science Center for Smart Materials Dalian University of Technology Dalian 116024 P.R. China

Z

Zihe Song

Frontiers Science Center for Flexible Electronics, Xi’an Institute of Flexible Electronics & Xi’an Institute of Biomedical Materials and Engineering, Northwestern Polytechnical University, 127 West Youyi Road, Xi’an 710072, China

G

Guangpeng Ma

State Key Laboratory of Fine Chemicals Frontier Science Center for Smart Materials Dalian University of Technology Dalian 116024 P.R. China

D

Dehua Huang

Laboratory of Bio-inspired Smart Interface Science, Technical Institute of Physics and Chemistry

H

Huiting Yu

Laboratory of Polymer Ecomaterials Changchun Institute of Applied Chemistry Chinese Academy of Sciences Changchun 130022 P.R. China

Q

Qian Liu

X

Xiangyu Kong

L

Liping Wen

Laboratory of Bio-inspired Smart Interface Science, Technical Institute of Physics and Chemistry