Collagenase motors in gelatine-based hydrogels

Abstract

Nano/micromotors outperform Brownian motion due to their self-propulsive capabilities and hold promise as carriers for drug delivery across biological barriers such as the extracellular matrix. This study employs poly(2-(diethylamino)ethyl methacrylate) polymer brushes to enhance the collagenase-loading capacity of silica particle-based motors with the aim to systematically investigate the impact of gelatine viscosity, motors’ size, and morphology on their propulsion velocity. Notably, 500 nm and 1 μm motors achieve similar speeds as high as ∼15 μm s−1 in stiff gelatine-based hydrogels when triggered with calcium. Taken together, our findings highlight the potential of collagenase-based motors for navigating the extracellular matrix, positioning them as promising candidates for efficient drug delivery.

Graphical abstract: Collagenase motors in gelatine-based hydrogels

Supplementary files

Article information

Article type
Paper
Submitted
10 Nov 2023
Accepted
25 Apr 2024
First published
01 May 2024

Nanoscale, 2024, Advance Article

Collagenase motors in gelatine-based hydrogels

N. Wang, T. Floriano Marcelino, C. Ade, S. Pendlmayr, M. A. Ramos Docampo and B. Städler, Nanoscale, 2024, Advance Article , DOI: 10.1039/D3NR05712G

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