TK

Tom J. A. Kokhuis

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6 records found

Influence of targeting, oscillation, and displacement of microbubbles” [Journal of Controlled Release 238 (2016) 197–211]

Journal article (2021) - Tom van Rooij, Ilya Skachkov, Inés Beekers, Kirby R. Lattwein, Jason D. Voorneveld, Tom J.A. Kokhuis, Deep Bera, Antonius F.W. van der Steen, Nico de Jong, More authors...
Journal article (2017) - Tom J A Kokhuis, Benno A. Naaijkens, Lynda J.M. Juffermans, Otto Kamp, Antonius F.W. Van Der Steen, Michel Versluis, Nico De Jong
The use of stem cells for regenerative tissue repair is promising but hampered by the low number of cells delivered to the site of injury. To increase the delivery, we propose a technique in which stem cells are linked to functionalized microbubbles, creating echogenic complex dubbed StemBells. StemBells are highly susceptible to acoustic radiation force which can be employed after injection to push the StemBells locally to the treatment site. To optimally benefit from the delivery technique, a thorough characterization of the dynamics of StemBells during ultrasound exposure is needed. Using high-speed optical imaging, we study the dynamics of StemBells as a function of the applied frequency from which resonance curves were constructed. A theoretical model, based on a modified Rayleigh-Plesset type equation, captured the experimental resonance characteristics and radial dynamics in detail. ...
Journal article (2016) - Ying Luan, Guillaume Renaud, Nico De Jong, Jason L. Raymond, Tim Segers, Guillaume Lajoinie, Robert Beurskens, Frits Mastik, Tom J A Kokhuis, Antonius F W Van Der Steen, Michel Versluis
In this study we present a combined optical sizing and acoustical characterization technique for the study of the dynamics of single freely-floating ultrasound contrast agent microbubbles exposed to long burst ultrasound excitations up to the milliseconds range. A co-axial flow device was used to position individual microbubbles on a streamline within the confocal region of three ultrasound transducers and a high-resolution microscope objective. Bright-field images of microbubbles passing through the confocal region were captured using a high-speed camera synchronized to the acoustical data acquisition to assess the microbubble response to a 1-MHz ultrasound burst. Nonlinear bubble vibrations were identified at a driving pressure as low as 50 kPa. The results demonstrate good agreement with numerical simulations based on the shell-buckling model proposed by Marmottant et al. [J. Acoust. Soc. Am. 118, 3499-3505 (2005)]. The system demonstrates the potential for a high-throughput in vitro characterization of individual microbubbles. ...

Influence of targeting, oscillation, and displacement of microbubbles

Journal article (2016) - Tom van Rooij, Ilya Skachkov, Klazina Kooiman, Inés Beekers, Kirby R. Lattwein, Jason D. Voorneveld, Tom J A Kokhuis, Deep Bera, Ying Luan, Antonius F W van der Steen, Nico de Jong
Microbubbles (MBs) have been shown to create transient or lethal pores in cell membranes under the influence of ultrasound, known as ultrasound-mediated sonoporation. Several studies have reported enhanced drug delivery or local cell death induced by MBs that are either targeted to a specific biomarker (targeted microbubbles, tMBs) or that are not targeted (non-targeted microbubbles, ntMBs). However, both the exact mechanism and the optimal acoustic settings for sonoporation are still unknown. In this study we used real-time uptake patterns of propidium iodide, a fluorescent cell impermeable model drug, as a measure for sonoporation. Combined with high-speed optical recordings of MB displacement and ultra-high-speed recordings of MB oscillation, we aimed to identify differences in MB behavior responsible for either viable sonoporation or cell death. We compared ntMBs and tMBs with identical shell compositions exposed to long acoustic pulses (500–50,000 cycles) at various pressures (150–500 kPa). Propidium iodide uptake highly correlated with cell viability; when the fluorescence intensity still increased 120 s after opening of the pore, this resulted in cell death. Higher acoustic pressures and longer cycles resulted in more displacing MBs and enhanced sonoporation. Non-displacing MBs were found to be the main contributor to cell death, while displacement of tMBs enhanced reversible sonoporation and preserved cell viability. Consequently, each therapeutic application requires different settings: non-displacing ntMBs or tMBs are advantageous for therapies requiring cell death, especially at 500 kPa and 50,000 cycles, whereas short acoustic pulses causing limited displacement should be used for drug delivery. ...
Conference paper (2012) - T. J.A. Kokhuis, Y. Luan, F. Mastik, R. H.S.H. Beurskens, M. Versluis, N. De Jong
Detailed information about the response of microbubbles to long ultrasound pulses (>100 cycles) is hampered by the limited time span ultra fast-framing cameras (> 10 MHz) cover. We therefore developed a new imaging mode for the Brandaris 128 camera [1], facilitating high speed imaging during small time windows (segments), equally distributed over a relatively large time span. ...
Journal article (2012) - Erik C. Gelderblom, Hendrik J. Vos, Frits Mastik, Telli Faez, Ying Luan, Tom J. A. Kokhuis, Antonius F. W. van der Steen, Detlef Lohse, Nico de Jong, Michel Versluis
The Brandaris 128 ultra-high-speed imaging facility has been updated over the last 10 years through modifications made to the camera’s hardware and software. At its introduction the camera was able to record 6 sequences of 128 images (500×292 pixels) at a maximum frame rate of 25 Mfps. The segmented mode of the camera was revised to allow for subdivision of the 128 image sensors intoarbitrary segments (1–128) with an inter-segment time of 17 μs. Furthermore, a region of interest can be selected to increase the number of recordings within a single run of the camera from 6 up to 125.By extending the imaging system with a laser-induced fluorescence setup, time-resolved ultra-highspeed fluorescence imaging of microscopic objects has been enabled. Minor updates to the systemare also reported here. © 2012 American Institute of Physics. [http://dx.doi.org/10.1063/1.4758783] ...