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Enhanced Thrombolytic Effect Induced by Acoustic Cavitation Generated from Nitrogen-doped Annealed Nanodiamond Particles

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Specialty Radiology
Date 2023 Aug 30
PMID 37647744
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Abstract

In biomedical research, ultrasonic cavitation, especially inertial cavitation (IC) has attracted extensive attentions due to its ability to induce mechanical, chemical and thermal effects. Like ultrasound contrast agent (UCA) microbubbles or droplets, acoustic cavitation can be effectively triggered beyond a certain pressure threshold through the interaction between ultrasound and nucleation particles, leading to an enhanced thrombolytic effect. As a newly developed nanocarbon material, nitrogen-doped annealed nanodiamond (N-AND) has shown promising catalytic performance. To further explore its effects on ultrasonic cavitation, N-AND was synthesized at the temperature of 1000 °C. After systematic material characterization, the potential of N-AND to induce enhanced IC activity was assessed for the first time by using passive cavitation detection (PCD). Based on experiments performed at varied material suspension concentration and cycle number, N-AND demonstrated a strong capability to generate significant cavitation characteristics, indicating the formation of stable bubbles from the surface of the materials. Furthermore, N-AND was applied in the in vitro thrombolysis experiments to verify its contribution to ultrasound thrombolysis. The influence of surface hydrophobicity on the cavitation potentials of ND and N-AND was innovatively discussed in combination with the theory of mote-induced nucleation. It is found that the cavitation stability of N-AND was better than that of the commercial UCA microbubbles. This study would provide better understanding of the potential of novel carbonous nanomaterials as cavitation nuclei and is expected to provide guidance for their future biomedical and industrial applications.

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References
1.
Tripodi A, Mannucci P . Laboratory investigation of thrombophilia. Clin Chem. 2001; 47(9):1597-606. View

2.
Mesiwala A, Farrell L, Wenzel H, Silbergeld D, Crum L, Winn H . High-intensity focused ultrasound selectively disrupts the blood-brain barrier in vivo. Ultrasound Med Biol. 2002; 28(3):389-400. DOI: 10.1016/s0301-5629(01)00521-x. View

3.
Xu Z, Fowlkes J, Rothman E, Levin A, Cain C . Controlled ultrasound tissue erosion: the role of dynamic interaction between insonation and microbubble activity. J Acoust Soc Am. 2005; 117(1):424-35. PMC: 2677096. DOI: 10.1121/1.1828551. View

4.
OSullivan G, Semba C, Bittner C, Kee S, Razavi M, Sze D . Endovascular management of iliac vein compression (May-Thurner) syndrome. J Vasc Interv Radiol. 2000; 11(7):823-36. DOI: 10.1016/s1051-0443(07)61796-5. View

5.
Gruber M, Bader K, Holland C . Cavitation thresholds of contrast agents in an in vitro human clot model exposed to 120-kHz ultrasound. J Acoust Soc Am. 2014; 135(2):646-53. PMC: 3986017. DOI: 10.1121/1.4843175. View