Selective Nitrate Transmembrane Transport Through Adaptive Weak C─H Bonding Cyanostilbene Water Channels

I Ioan Stroia (Institut Européen des Membranes, Adaptive Supramolecular Nanosystems Group, University of Montpellier, ENSCM-CNRS, UMR5635, Place E. Bataillon CC047, 34095 Montpellier, France) D Dan‐Dan Su (Institut Européen des Membrane Adaptive Supramolecular Nanosystems Group University of Montpellier ENSCM CNRS Montpellier France) Y Yuhao Li N Niculina Hadade (Supramolecular Organic and Organometallic Chemistry Center (SOOMCC) Babes‐Bolyai University Cluj‐Napoca Romania) I Ion Grosu (Supramolecular Organic and Organometallic Chemistry Center (SOOMCC) Babes‐Bolyai University Cluj‐Napoca Romania) A Arie van der Lee (Institut Européen des Membranes, Adaptive Supramolecular Nanosystems Group, University of Montpellier, ENSCM-CNRS, UMR5635, Place E. Bataillon CC047, 34095 Montpellier, France) M Mihail Barboiu (Institut Européen des Membranes, University of Montpellier, Adaptive Supramolecular Nanosystems Group, ENSCM-CNRS, UMR5635, Place E. Bataillon CC047, Montpellier 34095, France)

Abstract

ABSTRACT Transmembrane water transport strongly depends on how dynamic, translocating water clusters are stabilized within hydrogen‐bonding (HB) channels. Both structural order and short‐lived disorder of transient channels play important roles in ion and water translocation. Strong HB can result in tight water binding and reduced mobility. We hypothesize that weaker HB binding sites reduce water friction, thereby enhancing water permeation while suppressing ion transport due to their unmet dehydration requirements within membrane. Herein, we show that weak HB CH donor cyanostilbenes promote water transport through adaptive, less‐ordered water channels within the lipid bilayer, with water translocation efficiency depending in part, on the strength of the CH donor sites. Fine‐tuning both CH donor strength and binding geometry enables modulation of anion transport selectivity, ranging from moderate NO 3 − over Cl − selectivity to highly NO 3 − ‐selective transport and ultimately to exclusive water transport. For instance, we achieved over 200‐fold selectivity for NO 3 − over Cl − and ∼100‐fold selectivity for NO 3 − over Br − , while some systems showed no detectable Cl − or Br − transport yet retaining strong NO 3 − transport activity. This work represents a step toward adaptive transmembrane water channels and highlights the potential of HB CH donor channels for water translocation and for increased NO 3 − / Cl − selectivity.

Article Details

Volume / Issue Vol. 65, Issue 29
Published July 13, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (7)

I

Ioan Stroia

Institut Européen des Membranes, Adaptive Supramolecular Nanosystems Group, University of Montpellier, ENSCM-CNRS, UMR5635, Place E. Bataillon CC047, 34095 Montpellier, France

D

Dan‐Dan Su

Institut Européen des Membrane Adaptive Supramolecular Nanosystems Group University of Montpellier ENSCM CNRS Montpellier France

Y

Yuhao Li

N

Niculina Hadade

Supramolecular Organic and Organometallic Chemistry Center (SOOMCC) Babes‐Bolyai University Cluj‐Napoca Romania

I

Ion Grosu

Supramolecular Organic and Organometallic Chemistry Center (SOOMCC) Babes‐Bolyai University Cluj‐Napoca Romania

A

Arie van der Lee

Institut Européen des Membranes, Adaptive Supramolecular Nanosystems Group, University of Montpellier, ENSCM-CNRS, UMR5635, Place E. Bataillon CC047, 34095 Montpellier, France

M

Mihail Barboiu

Institut Européen des Membranes, University of Montpellier, Adaptive Supramolecular Nanosystems Group, ENSCM-CNRS, UMR5635, Place E. Bataillon CC047, Montpellier 34095, France