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Measuring the Compressibility of Cellulose Nanofiber-Stabilized Microdroplets Using Acoustophoresis

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Publisher MDPI
Date 2021 Dec 24
PMID 34945315
Citations 1
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Abstract

Droplets with a liquid perfluoropentane core and a cellulose nanofiber shell have the potential to be used as drug carriers in ultrasound-mediated drug delivery. However, it is necessary to understand their mechanical properties to develop ultrasound imaging sequences that enable in vivo imaging of the vaporization process to ensure optimized drug delivery. In this work, the compressibility of droplets stabilized with cellulose nanofibers was estimated using acoustophoresis at three different acoustic pressures. Polyamide particles of known size and material properties were used for calibration. The droplet compressibility was then used to estimate the cellulose nanofiber bulk modulus and compare it to experimentally determined values. The results showed that the acoustic contrast factor for these droplets was negative, as the droplets relocated to pressure antinodes during ultrasonic actuation. The droplet compressibility was 6.6-6.8 ×10-10 Pa-1, which is higher than for water (4.4×10-10 Pa-1) but lower than for pure perfluoropentane (2.7×10-9 Pa-1). The compressibility was constant across different droplet diameters, which was consistent with the idea that the shell thickness depends on the droplet size, rather than being constant.

Citing Articles

Cellulose Nanofiber-Coated Perfluoropentane Droplets: Fabrication and Biocompatibility Study.

Loskutova K, Torras M, Zhao Y, Svagan A, Grishenkov D Int J Nanomedicine. 2023; 18:1835-1847.

PMID: 37051314 PMC: 10085006. DOI: 10.2147/IJN.S397626.

References
1.
Tinevez J, Perry N, Schindelin J, Hoopes G, Reynolds G, Laplantine E . TrackMate: An open and extensible platform for single-particle tracking. Methods. 2016; 115:80-90. DOI: 10.1016/j.ymeth.2016.09.016. View

2.
Olofsson K, Hammarstrom B, Wiklund M . Acoustic separation of living and dead cells using high density medium. Lab Chip. 2020; 20(11):1981-1990. DOI: 10.1039/d0lc00175a. View

3.
Lobmann K, Svagan A . Cellulose nanofibers as excipient for the delivery of poorly soluble drugs. Int J Pharm. 2017; 533(1):285-297. DOI: 10.1016/j.ijpharm.2017.09.064. View

4.
Muller P, Barnkob R, Jensen M, Bruus H . A numerical study of microparticle acoustophoresis driven by acoustic radiation forces and streaming-induced drag forces. Lab Chip. 2012; 12(22):4617-27. DOI: 10.1039/c2lc40612h. View

5.
Barnkob R, Iranmanesh I, Wiklund M, Bruus H . Measuring acoustic energy density in microchannel acoustophoresis using a simple and rapid light-intensity method. Lab Chip. 2012; 12(13):2337-44. DOI: 10.1039/c2lc40120g. View