JOURNAL ARTICLE
Supramolecular Ion Channels to Engineer Zn2+ Ion Transport Mediated Chemical‐to‐Optical Signal Transduction.
Published In: Angewandte Chemie, 2025, v. 137, n. 28. P. 1 1 of 3
Database: Academic Search Ultimate 2 of 3
Authored By: Srimayee, Soumya; Prusty, Biswa Mohan; Kar, Mrinal Kanti; Winterhalter, Mathias; Manna, Debasis 3 of 3
Abstract
Artificial ion channels have significant potential for various applications, including molecular communication, bio‐sensing, and constructing artificial cells. In this report, we demonstrated the development of a molecular communication system that transports ions across the lipid bilayers via the formation of supramolecular ion channels and harnesses chemical reactions to overcome the challenges of executing signal‐processing functions at the molecular level. The potent ionophore self‐assembles into nanochannels within the lipid bilayers and selectively transports Zn2+ ions. The movement of Zn2+ ions through these supramolecular ion channels enables the in situ generation of a water‐soluble catalytic system with tyrosine. This catalytic system promotes esterase‐like activity, generating fluorescent reporters from non‐fluorescent ester‐based compounds within the intravesicular environment. Furthermore, this process indicates the formation of a three‐input AND logic gate in the fluorescence mode, allowing the monitoring of the chemical‐to‐optical signal amplification process akin to biological counterparts. Developing these molecular communication systems to replicate the complexity of natural cellular processes opens up exciting opportunities for designing advanced biomimetic tools and exploring the fundamental principles underlying cellular communication. [ABSTRACT FROM AUTHOR]
Additional Information
- Source:Angewandte Chemie. 2025/07, Vol. 137, Issue 28, p1
- Document Type:Article
- Subject Area:Health and Medicine
- Publication Date:2025
- ISSN:0044-8249
- DOI:10.1002/ange.202501634
- Accession Number:186461289
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