Emerging Applications of Therapeutic Ultrasound in Neuro-oncology: Moving Beyond Tumor Ablation.
Authors: Hersh DS, Kim AJ, Winkles JA, Eisenberg HM, Woodworth GF, Frenkel V
: Transcranial focused ultrasound (FUS) can noninvasively transmit acoustic energy with a high degree of accuracy and safety to targets and regions within the brain. Technological advances, including phased-array transducers and real-time temperature monitoring with magnetic resonance thermometry, have created new opportunities for FUS research and clinical translation. Neuro-oncology, in particular, has become a major area of interest because FUS offers a multifaceted approach to the treatment of brain tumors. FUS has the potential to generate cytotoxicity within tumor tissue, both directly via thermal ablation and indirectly through radiosensitization and sonodynamic therapy; to enhance the delivery of therapeutic agents to brain tumors by transiently opening the blood-brain barrier or improving distribution through the brain extracellular space; and to modulate the tumor microenvironment to generate an immune response. In this review, we describe each of these applications for FUS, the proposed mechanisms of action, and the preclinical and clinical studies that have set the foundation for using FUS in neuro-oncology. BBB, blood-brain barrierCED, convection-enhanced delivery5-Ala, 5-aminolevulinic acidFUS, focused ultrasoundGBM, glioblastoma multiformeHSP, heat shock proteinMRgFUS, magnetic resonance-guided focused ultrasoundpFUS, pulsed focused ultrasound.
Introduction
Purpose
Other
Study Objective
To review applications of transcranial focused ultrasound in neuro-oncology by describing mechanisms of action and summarizing relevant preclinical and clinical studies.
Disease model
brain tumors (neuro-oncology)
MRI or image guidance method
Magnetic resonance (MR) thermometry (MRI-guided)
Outcomes and Safety
Summary of Outcomes
Focused ultrasound can induce tumor cytotoxicity (thermal ablation, radiosensitization, sonodynamic therapy), transiently open the blood–brain barrier to enhance drug delivery and distribution, and modulate the tumor microenvironment to elicit immune responses; the review did not report specific tested FUS parameter settings.
Safety-related matter
The paper states that transcranial focused ultrasound (FUS) can noninvasively deliver acoustic energy with a high degree of accuracy and safety, and that technologies like phased array transducers and real-time MR thermometry enhance this. No adverse effects are described in the provided text.
Brain Region
Ultrasound Parameters
Focal Characteristics
Focal depth: None; Focal length: None; Aperture size: None
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