Logo image
Controlling stimulus sensitivity by tailoring nanoparticle core hydrophobicity
Journal article   Open access   Peer reviewed

Controlling stimulus sensitivity by tailoring nanoparticle core hydrophobicity

Xiao Zhang, Bowen Zhao, Shiwei Fu, Ronald S Seruya, Hannah E Fanos, Ashley A Petrisor, Yilin Liu, Zixin Yang and Fuwu Zhang
Biomaterials science, Vol.13(9), pp.2332-2339
2025-04-29
PMID: 40138203

Abstract

Antineoplastic Agents - administration & dosage Antineoplastic Agents - chemistry Antineoplastic Agents - pharmacology Cell Line, Tumor Cell Survival - drug effects Drug Carriers - chemistry Drug Liberation Glutathione - chemistry Humans Hydrophobic and Hydrophilic Interactions Nanoparticles - chemistry Polycarboxylate Cement - chemistry
Cancer remains a significant global health challenge, necessitating the development of more effective therapeutic strategies. This work presents a novel glutathione (GSH)-responsive platform designed to enhance the delivery and efficacy of the anticancer drug mertansine (DM1) through the modulation of pendant groups in polycarbonate-drug conjugates. By systematically varying the hydrophobicity of the pendant groups, we investigated their effects on nanostructures, GSH sensitivity, colloidal stability, drug release profiles, and the anticancer efficacy of these polymeric nanoparticles, revealing that more hydrophobic pendant groups effectively reduce GSH accessibility for the nanoparticle cores, improve colloidal stability, and slow drug release rates. The results underscore the critical importance of polymer structures in optimizing drug delivery systems and offer valuable insights for future research on advanced nanomaterials with enhanced drug delivery for cancer therapies.
pdf
Controlling stimulus sensitivity by tailoring nanoparticle core hydrophobicity1.67 MBDownloadView
Open Access CC BY V4.0
url
https://doi.org/10.1039/d5bm00163cView
Published (Version of record) Open

Metrics

InCites Highlights

These are selected metrics from InCites Benchmarking & Analytics tool, related to this output

Citation topics
2 Chemistry
2.53 Polymers & Macromolecules
2.53.70 Nanocarrier Drug Delivery
Web Of Science research areas
Materials Science, Biomaterials
ESI research areas
Materials Science

Details

Logo image