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Pre-Clinical Study of In Vivo Magnetic Resonance-Guided Bubble-Enhanced Heating in Pig Liver
Authors:Delphine Elbes,Quentin Denost,Christophe Laurent,Hervé   Trillaud,Anne Rullier,Bruno Quesson
Affiliation: Centre de Recherche Cardio-Thoracique, Université de Bordeaux, Bordeaux, France; INSERM, U1045, Bordeaux, France; CHU de Bordeaux, Hôpital Cardiologique, Bordeaux, France;§ Laboratoire d''imagerie fonctionnelle et moléculaire, UMR 5231 CNRS/Université de Bordeaux, F-33076 Bordeaux, France; LIRYC, L''institut de rythmologie et de modélisation cardiaque, Pessac, France;? Département de Chirurgie digestive, Hôpital Saint André, Université de Bordeaux, Bordeaux, France;# Département de Radiologie, Hôpital Saint André, Université de Bordeaux, Bordeaux, France;& Département Anatomopathologie, Hôpital Pellegrin, Université de Bordeaux, Bordeaux, France
Abstract:Bubble-enhanced heating (BEH) can be exploited to increase heating efficiency in treatment of liver tumors with non-invasive high-intensity focused ultrasound (HIFU). The objectives of this study were: (i) to demonstrate the feasibility of increasing the heating efficiency of sonication exploiting BEH in pig liver in vivo using a clinical platform; (ii) to determine the acoustic threshold for such effects with real-time, motion-compensated magnetic resonance-guided thermometry; and (iii) to compare the heating patterns and thermal lesion characteristics resulting from continuous sonication and sonication including a burst pulse. The threshold acoustic power for generation of BEH in pig liver in vivo was determined using sonication of 0.5-s duration (“burst pulse”) under real-time magnetic resonance thermometry. In a second step, experimental sonication composed of a burst pulse followed by continuous sonication (14.5 s) was compared with conventional sonication (15 s) of identical energy (1.8 kJ). Modification of the heating pattern at the targeted region located at a liver depth between 20 and 25 mm required 600–800 acoustic watts. The experimental group exhibited near-spherical heating with 40% mean enhancement of the maximal temperature rise as compared with the conventional sonication group, a mean shift of 7 ± 3.3 mm toward the transducer and reduction of the post-focal temperature increase. Magnetic resonance thermometry can be exploited to control acoustic BEH in vivo in the liver. By use of experimental sonication, more efficient heating can be achieved while protecting tissues located beyond the focal point.
Keywords:High-intensity focused ultrasound   Magnetic resonance imaging   Liver   Magnetic resonance thermometry   Acoustic cavitation   Enhanced heating   Boiling
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