Issue 16, 2020

Temperature/near-infrared light-responsive conductive hydrogels for controlled drug release and real-time monitoring

Abstract

Stimuli-responsive hydrogels with adaptable physical properties show great potential in the biomedical field. In particular, the collection of electrical signals is essential for precision medicine. Here, a simple strategy is demonstrated for achieving controlled drug release and real-time monitoring using an interpenetrating binary network consisting of a graphene aerogel and a poly(N-isopropylacrylamide) hydrogel with incorporated polydopamine nanoparticles (PDA-NPs). Owing to the good physical properties of graphene and the embedded PDA-NPs, the hybrid hydrogel shows enhanced mechanical properties and good electrical conductivity. In addition, the hybrid hydrogel also shows dual thermo- and near-infrared light responsiveness, as revealed by the controlled release of a model drug. In addition, as the hydrogel exhibits detectable changes in resistance during drug release, the drug-release behavior of the hydrogel can be monitored in real time using electrical signals. Moreover, owing to the abundance of catechol groups on the PDA-NPs, the hybrid hydrogel shows good tissue adhesiveness, as demonstrated using in vivo experiments. Thus, the developed hybrid hydrogel exhibits considerable practical applicability for drug delivery and precision medicine.

Graphical abstract: Temperature/near-infrared light-responsive conductive hydrogels for controlled drug release and real-time monitoring

Supplementary files

Article information

Article type
Communication
Submitted
29 Feb 2020
Accepted
03 Mar 2020
First published
12 Mar 2020

Nanoscale, 2020,12, 8679-8686

Temperature/near-infrared light-responsive conductive hydrogels for controlled drug release and real-time monitoring

Y. Zhu, Q. Zeng, Q. Zhang, K. Li, X. Shi, F. Liang and D. Han, Nanoscale, 2020, 12, 8679 DOI: 10.1039/D0NR01736A

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