Magnetic micromotors crossing lipid membranes
Magnetic micromotors crossing lipid membranes
Nano/micromotors are self-propelled particles that show enhanced motion upon being triggered by a stimulus. Their use in nanomedicine has been widely explored, with special focus on imaging or drug delivery. However, a thorough understanding of the requirements for more efficient locomotion is still lacking. In this paper, we assembled magnetically propelled motors of different sizes (i.e., 0.5, 1 and 4 μm) and surface chemistries (positive charge or PEGylated) and assessed their motion in the presence of giant unilamellar lipid vesicles (GUVs) of varying compositions (zwitterionic, negatively charged and saturated lipids). Unexpectedly, the size does not seem to be the dominating characteristics that governs the ability of the motors to cross lipid membranes. Specifically, the 0.5 μm PEGylated motors have very limited ability to cross the lipid membrane of GUVs due to their non-interacting nature compared to their equally sized positively charged counterparts. Furthermore, membranes made of saturated lipids and, in particular, in combination with a weak magnetic field facilitate motors’ crossing, regardless of their size. The results were validated by in-house data-driven statistical analysis that employs experimental data to allow for the identification of individual motor motion in the ensemble when meeting the lipid membranes. Altogether, we provide insight into motor locomotion when they interact with a biological barrier considering both the entire ensemble and the individual motors, which has the potential to support considerations of future motor designs.
2432-2443
Ramos-Docampo, Miguel A.
e41ae666-4eb7-404e-96c8-89d7bc6c4424
Hovorka, Ondrej
a12bd550-ad45-4963-aa26-dd81dd1609ee
Städler, Brigitte
0007f3f0-1a58-4699-8b4f-a1e0ba0c500f
Ramos-Docampo, Miguel A.
e41ae666-4eb7-404e-96c8-89d7bc6c4424
Hovorka, Ondrej
a12bd550-ad45-4963-aa26-dd81dd1609ee
Städler, Brigitte
0007f3f0-1a58-4699-8b4f-a1e0ba0c500f
Ramos-Docampo, Miguel A., Hovorka, Ondrej and Städler, Brigitte
(2024)
Magnetic micromotors crossing lipid membranes.
Nanoscale, 16 (5), .
(doi:10.1039/d3nr05462d).
Abstract
Nano/micromotors are self-propelled particles that show enhanced motion upon being triggered by a stimulus. Their use in nanomedicine has been widely explored, with special focus on imaging or drug delivery. However, a thorough understanding of the requirements for more efficient locomotion is still lacking. In this paper, we assembled magnetically propelled motors of different sizes (i.e., 0.5, 1 and 4 μm) and surface chemistries (positive charge or PEGylated) and assessed their motion in the presence of giant unilamellar lipid vesicles (GUVs) of varying compositions (zwitterionic, negatively charged and saturated lipids). Unexpectedly, the size does not seem to be the dominating characteristics that governs the ability of the motors to cross lipid membranes. Specifically, the 0.5 μm PEGylated motors have very limited ability to cross the lipid membrane of GUVs due to their non-interacting nature compared to their equally sized positively charged counterparts. Furthermore, membranes made of saturated lipids and, in particular, in combination with a weak magnetic field facilitate motors’ crossing, regardless of their size. The results were validated by in-house data-driven statistical analysis that employs experimental data to allow for the identification of individual motor motion in the ensemble when meeting the lipid membranes. Altogether, we provide insight into motor locomotion when they interact with a biological barrier considering both the entire ensemble and the individual motors, which has the potential to support considerations of future motor designs.
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Submitted date: 29 October 2023
Accepted/In Press date: 22 December 2023
e-pub ahead of print date: 16 January 2024
Identifiers
Local EPrints ID: 490897
URI: http://eprints.soton.ac.uk/id/eprint/490897
ISSN: 2040-3364
PURE UUID: 47b0e219-4bf4-4609-bdd7-664c14a3731e
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Date deposited: 07 Jun 2024 17:45
Last modified: 08 Jun 2024 01:46
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Author:
Miguel A. Ramos-Docampo
Author:
Brigitte Städler
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