Search bioRxiv⌕ Search

Biology subjects

van der Steen, A. F. W.

Publications and source records attributed to van der Steen, A. F. W..

2 recordsLinked to original sources

Characterizing microbubble-mediated permeabilization in a vessel-on-a-chip model

Drug transport from blood to extravascular tissue can locally be achieved by increasing the vascular permeability through ultrasound-activated microbubbles. However, the mechanism remains unknown, including whether short and long cycles of ultrasound induce the same onset rate, spatial distribution, and amount of vascular permeability increase. Accurate models are necessary for insights into the mechanism so a microvessel-on-a-chip is developed with a membrane-free extravascular space. Using these microvessels-on-a-chip, we show distinct differences between 2 MHz ultrasound treatments with 10 or 1000 cycles. The onset rate is slower for 10 than 1000 cycles, while both cycle lengths increase the permeability in spot-wise patterns without affecting cell viability. Significantly less vascular permeability increase and sonoporation are induced for 10 versus 1000 cycles at 750 kPa (i.e., highest studied peak negative acoustic pressure (PNP)). The PNP threshold for vascular permeability increases is 750 versus 550 kPa for 10 versus 1000 cycles, while this is 750 versus 220 kPa for sonoporation. Vascular permeability increases do not correlate with v{beta}3-targeted microbubble behavior, while sonoporation correlates with v{beta}3-targeted microbubble clustering. In conclusion, the further mechanistic unraveling of vascular permeability increase by ultrasound-activated microbubbles in a developed microvessel-on-a-chip model aids safe and efficient development of microbubble-mediated drug transport.

bioengineering↗

Broad bandwidth photoacoustic imaging using a PVDF receiver array

Photoacoustic (PA) signals are typically broadband, with a correlation between their frequency characteristics and source dimension. The transducers that are commonly used for PA acquisition are optimized for pulse-echo ultrasound imaging and are primarily based on inorganic piezoelectrics in ceramic, single-crystal, or composite form. These transducers are band-limited which limits their functionality as receivers for broadband PA signals. Custom broadband transducers are expensive and complex to manufacture. In this work, we propose to use a poly vinylidene difluoride (PVDF) based transducer for PA acquisition in combination with a commercial single-crystal linear array for pulse-echo acquisition. An 8-element PVDF array with 20dB onboard amplification was built in-house. The PVDF receiver is transparent to the pulse-echo ultrasound, and both transducers were positioned such that they image the same volume. The combined PA raw data from the PVDF and the linear array demonstrated the feasibility of achieving a broader overall reception bandwidth. This study establishes a foundation for a simpler acquisition system that enhances PA signal quality, co-registered with conventional ultrasound imaging, which may support the clinical adoption of PA imaging.

bioengineering↗