Victor Lepeintre, Raphaël Dutour, Corinne Lagrost, Gilles Bruylants, Ivan Jabin
Thiol chemistry is the most widely used strategy for functionalizing gold nanoparticles (AuNPs). However, the limited stability of Au-S anchoring often prevents a robust and reproducible surface modification, a problem exacerbated by the poor tolerance of citrate-stabilized AuNPs, which are commonly used as a starting material, to harsh experimental conditions. Herein, calix[4]arene-coated AuNPs with covalently grafted Au-C bonds are investigated as a robust starting platform for thiol-mediated functionalization. Using a fluorescent PEG-thiol probe, the stability of the thiol anchoring was evaluated under thermal, competitive, and chemical stresses. The Au-S bond exhibited enhanced resistance to ligand desorption on calixarene-coated nanoparticles compared with conventional citrate-stabilized AuNPs as the starting material. Leveraging the high colloidal stability imparted by the calixarene interlayer, thiolated DNA and RNA were successfully grafted under abrupt single-step high-salt conditions (900 mM NaCl), thereby bypassing conventional salt-aging procedures. In contrast, citrate-stabilized AuNPs exhibited pronounced aggregation under equivalent functionalization conditions. On calixarene-coated AuNPs, both nucleic acids reach similarly high surface densities (∼0.44-0.46 strands per nm2) without inducing nanoparticle aggregation. Interestingly, these densities are similar to those obtained from citrate-stabilized AuNPs, suggesting that nucleic acids assemble in a packing-limited regime dictated by interstrand electrostatic repulsion and steric crowding rather than by the absolute number of available gold binding sites. Moreover, DNA-functionalized calixarene-coated AuNPs retain full hybridization capability in lateral flow and solution-phase assays, while citrate-stabilized AuNPs functionalized under the same single-step high-salt conditions show reduced functionality due to aggregation. These results demonstrate that the calixarene interlayer provides robust colloidal stability independently of nucleic acid coverage, enabling rapid, reproducible, and high-density nucleic acid functionalization under conditions that typically destabilize citrate-stabilized systems. Overall, calixarene-coated AuNPs emerge as a robust and generalizable alternative to citrate-stabilized nanoparticles as starting nanomaterials for thiol-based functionalization.