Hancock Hilary A, Smith Lauren H, Cuesta Julian, Durrani Amir K, Angstadt Mary, Palmeri Mark L, Kimmel Eitan, Frenkel Victor
Department of Radiology and Imaging Sciences, Clinical Center, National Institutes of Health, Bethesda, MD 20892, USA.
Ultrasound Med Biol. 2009 Oct;35(10):1722-36. doi: 10.1016/j.ultrasmedbio.2009.04.020. Epub 2009 Jul 17.
Pulsed high-intensity focused ultrasound (HIFU) exposures without ultrasound contrast agents have been used for noninvasively enhancing the delivery of various agents to improve their therapeutic efficacy in a variety of tissue models in a nondestructive manner. Despite the versatility of these exposures, little is known about the mechanisms by which their effects are produced. In this study, pulsed-HIFU exposures were given in the calf muscle of mice, followed by the administration of a variety of fluorophores, both soluble and particulate, by local or systemic injection. In vivo imaging (whole animal and microscopic) was used to quantify observations of increased extravasation and interstitial transport of the fluorophores as a result of the exposures. Histological analysis indicated that the exposures caused some structural alterations such as enlarged gaps between muscle fiber bundles. These effects were consistent with increasing the permeability of the tissues; however, they were found to be transient and reversed themselves gradually within 72 h. Simulations of radiation force-induced displacements and the resulting local shear strain they produced were carried out to potentially explain the manner by which these effects occurred. A better understanding of the mechanisms involved with pulsed HIFU exposures for noninvasively enhancing delivery will facilitate the process for optimizing their use.
在不使用超声造影剂的情况下,脉冲高强度聚焦超声(HIFU)已被用于以非侵入性方式增强各种药物的递送,从而在多种组织模型中无损地提高其治疗效果。尽管这些照射具有多功能性,但其产生作用的机制却鲜为人知。在本研究中,对小鼠小腿肌肉进行脉冲HIFU照射,然后通过局部或全身注射给予多种荧光团,包括可溶性和颗粒性荧光团。利用体内成像(整体动物和显微镜成像)来量化观察到的由于照射导致的荧光团外渗增加和间质转运情况。组织学分析表明,照射引起了一些结构改变,如肌纤维束之间的间隙增大。这些效应与组织通透性增加一致;然而,发现它们是短暂的,并在72小时内逐渐恢复。对辐射力诱导的位移及其产生的局部剪切应变进行了模拟,以潜在地解释这些效应发生的方式。更好地理解脉冲HIFU照射用于非侵入性增强递送所涉及的机制将有助于优化其使用的过程。