Biologyarticle2026-08-15

OH-Rich Interfacial Nanoarchitectonics for the Reconciliation of Structural Stability and Functional Accessibility in Curcumin Nanotherapeutics

0 citations

Abstract

Curcumin offers significant therapeutic potential but is hindered by poor aqueous stability and limited cellular accessibility. Here, we present a curcumin nanotherapeutic platform featuring OH-rich, silanol-rich porous silica nanointerfaces (CU@silica NPs) that successfully decouple structural stabilization from molecular mobility. By employing poly(allylamine hydrochloride) (PAH)-assisted assembly and rapid tetramethyl orthosilicate (TMOS) hydrolysis, we engineered a mesostructured silica shell with a high density of surface silanol groups, creating diffusion pathways that preserve curcumin mobility while protecting it from degradation. This permeable nanointerface enables lipid-triggered fluorescence activation, allowing activation-responsive monitoring of drug delivery. The OH-rich silica interface further ensures exceptional redispersibility and functional preservation even after repeated powderization cycles, a critical requirement for long-term storage and transport. Supported by molecular dynamics simulations and in vitro evaluations, CU@silica NPs demonstrate accelerated cellular uptake and a five-fold improvement in anticancer efficacy compared with CU NPs. These findings establish silica nano-interface engineering as a robust strategy for developing storage-stable, stimuli-responsive, and image-guided nanomedicines for hydrophobic drugs.

// Source

View paper (DOI)OpenAlexACS Applied Materials & InterfacesPublished 2026-08-15

Authors: Goen Lee, Woo Hyuk Jung, Tae Kyung Won, Dong June Ahn

Institutions: Korea University, Korea University, Myongji University