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Ultrasound and Nanomaterial: an Efficient Pair to Fight Cancer

Overview
Publisher Biomed Central
Specialty Biotechnology
Date 2022 Mar 18
PMID 35300712
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Abstract

Ultrasounds are often used in cancer treatment protocols, e.g. to collect tumor tissues in the right location using ultrasound-guided biopsy, to image the region of the tumor using more affordable and easier to use apparatus than MRI and CT, or to ablate tumor tissues using HIFU. The efficacy of these methods can be further improved by combining them with various nano-systems, thus enabling: (i) a better resolution of ultrasound imaging, allowing for example the visualization of angiogenic blood vessels, (ii) the specific tumor targeting of anti-tumor chemotherapeutic drugs or gases attached to or encapsulated in nano-systems and released in a controlled manner in the tumor under ultrasound application, (iii) tumor treatment at tumor site using more moderate heating temperatures than with HIFU. Furthermore, some nano-systems display adjustable sizes, i.e. nanobubbles can grow into micro-bubbles. Such dual size is advantageous since it enables gathering within the same unit the targeting properties of nano bubbles via EPR effect and the enhanced ultrasound contrasting properties of micro bubbles. Interestingly, the way in which nano-systems act against a tumor could in principle also be adjusted by accurately selecting the nano-system among a large choice and by tuning the values of the ultrasound parameters, which can lead, due to their mechanical nature, to specific effects such as cavitation that are usually not observed with purely electromagnetic waves and can potentially help destroying the tumor. This review highlights the clinical potential of these combined treatments that can improve the benefit/risk ratio of current cancer treatments.

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References
1.
Rebolj M, Assi V, Brentnall A, Parmar D, Duffy S . Addition of ultrasound to mammography in the case of dense breast tissue: systematic review and meta-analysis. Br J Cancer. 2018; 118(12):1559-1570. PMC: 6008336. DOI: 10.1038/s41416-018-0080-3. View

2.
Duan L, Yang L, Jin J, Yang F, Liu D, Hu K . Micro/nano-bubble-assisted ultrasound to enhance the EPR effect and potential theranostic applications. Theranostics. 2020; 10(2):462-483. PMC: 6929974. DOI: 10.7150/thno.37593. View

3.
Hernandez C, Gulati S, Fioravanti G, Stewart P, Exner A . Cryo-EM Visualization of Lipid and Polymer-Stabilized Perfluorocarbon Gas Nanobubbles - A Step Towards Nanobubble Mediated Drug Delivery. Sci Rep. 2017; 7(1):13517. PMC: 5647366. DOI: 10.1038/s41598-017-13741-1. View

4.
Shao Y, Guo L, Li A, Zhang K, Liu W, Shi J . US-triggered ultra-sensitive "thrombus constructor" for precise tumor therapy. J Control Release. 2019; 318:136-144. DOI: 10.1016/j.jconrel.2019.12.029. View

5.
Beik J, Abed Z, Ghoreishi F, Hosseini-Nami S, Mehrzadi S, Shakeri-Zadeh A . Nanotechnology in hyperthermia cancer therapy: From fundamental principles to advanced applications. J Control Release. 2016; 235:205-221. DOI: 10.1016/j.jconrel.2016.05.062. View