Related Experiment Video
Updated: Sep 7, 2026

Measuring Fluxes of Mineral Nutrients and Toxicants in Plants with Radioactive Tracers
Published on: August 22, 2014
Sodium-Potassium Competition Controls Xenon Uptake in Cucurbiturils
Katarzyna Dziubińska-Kühn1, Guzel Musabirova2, Sophie Effertz2
1Maastricht Centre for Systems Biology and Bioinformatics (MaCSBio), Faculty of Science and Engineering, Maastricht University, Paul-Henri Spaaklaan 1, 6229 ENMaastricht, The Netherlands.
Abstract:
The remarkable specificity of 129Xe magnetic resonance has motivated efforts to expand its application to medical diagnostics and to develop Xe-cage guest-host complexes compatible with in vivo conditions. Cucurbit[n]urils (CB[n]) are among the most promising host molecules for direct biocompatible Xe encapsulation. Building on earlier observations that alkali cations influence the binding of Xe to CB[n], this study provides a comprehensive experimental and computational analysis of how the ratio of Na+ to K+ in the solution governs Xe uptake by CB[6] and CB[5]. Using one- and two-dimensional 129Xe NMR together with quantum-mechanical modeling, we elucidate the molecular mechanism by which alkali cations modulate cage Xe uptake. Our calculations reveal that Na+ can adopt a near-central position inside CB[6], directly competing with Xe for the hydrophobic core, thereby suppressing encapsulation. In contrast, K+ remains confined to peripheral portal sites, leaving the central cavity accessible, and enabling Xe to displace the cation and stabilize inside the cage. Elevated temperatures and cage-cage competition further amplify these effects. By combining experimental and theoretical results, we thus provide the first detailed mechanistic explanation of Na+/K+ competition in Xe-CB[n] systems, and establish clear design principles to optimize Xe hosts for future in vivo applications.
More Related Videos
Related Concept Videos
Responses to Salt Stress
Key Elements for Plant Nutrition
Regulation of Transpiration by Stomata
Microbial Interactions: Competition
Water and Mineral Acquisition
Short-distance Transport of Resources

