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Updated: May 7, 2025

Sonodynamic Therapy for the Treatment of Glioblastoma Multiforme in a Mouse Model Using a Portable Benchtop Focused Ultrasound System
Published on: February 10, 2023
Recent Advances and Future Directions in Sonodynamic Therapy for Cancer Treatment
Priyankan Datta1, Sreejesh Moolayadukkam1,2, Dhrubajyoti Chowdhury3
1Department of Aerospace and Mechanical Engineering, University of Southern California, Los Angeles, CA 90089, USA.
Abstract:
Deep-tissue solid cancer treatment has a poor prognosis, resulting in a very low 5-year patient survival rate. The primary challenges facing solid tumor therapies are accessibility, incomplete surgical removal of tumor tissue, the resistance of the hypoxic and heterogeneous tumor microenvironment to chemotherapy and radiation, and suffering caused by off-target toxicities. Here, sonodynamic therapy (SDT) is an evolving therapeutic approach that uses low-intensity ultrasound to target deep-tissue solid tumors. The ability of ultrasound to deliver energy safely and precisely into small deep-tissue (>10 cm) volumes makes SDT more effective than conventional photodynamic therapy. While SDT is currently in phase 1/2 clinical trials for glioblastoma multiforme, its use for other solid cancer treatments, such as breast, pancreatic, liver, and prostate cancer, is still in the preclinical stage, with further investigation required to improve its therapeutic efficacy. This review, therefore, focuses on recent advances in SDT cancer treatments. We describe the interaction between ultrasound and sonosensitizer molecules and the associated energy transfer mechanism to malignant cells, which plays a central role in SDT-mediated cell death. Different sensitizers used in clinical and preclinical trials of various cancer treatments are listed, and the critical ultrasound parameters for SDT are reviewed. We also discuss approaches to improve the efficacies of these sonosensitizers, the role of the 3-dimensional spheroid in vitro investigations, ultrasound-controlled CAR-T cell and SDT-based multimodal therapy, and machine learning for sonosensitizer optimization, which could facilitate clinical translation of SDT.
Insights
Sonodynamic therapy (SDT) offers a promising approach for deep-tissue solid cancer treatment by using ultrasound to activate sonosensitizers. This review highlights recent advances in SDT for improved cancer therapy efficacy.
Area of Science:
- Oncology
- Biomedical Engineering
- Therapeutic Ultrasound
Background:
- Deep-tissue solid cancers have poor prognoses due to challenges like accessibility and treatment resistance.
- Conventional therapies often struggle with incomplete tumor removal and off-target toxicities.
- Sonodynamic therapy (SDT) utilizes ultrasound for targeted energy delivery to deep-seated tumors.
Purpose of the Study:
- To review recent advancements in sonodynamic therapy for solid cancer treatment.
- To elucidate the mechanisms of SDT, including ultrasound-sonosensitizer interactions and energy transfer.
- To discuss strategies for enhancing SDT efficacy and its potential for clinical translation.
Main Methods:
- Review of current literature on SDT in preclinical and clinical cancer studies.
- Analysis of ultrasound parameters and sonosensitizer types used in SDT.
- Exploration of emerging approaches like 3D spheroid models, CAR-T cell integration, and machine learning for optimization.
Main Results:
- SDT demonstrates potential for targeting deep-tissue solid tumors (>10 cm) with precision.
- Various sonosensitizers are employed in clinical and preclinical settings for different cancers.
- Investigated approaches show promise in improving SDT efficacy and overcoming treatment resistance.
Conclusions:
- SDT is an evolving therapeutic modality with significant potential for treating various solid tumors.
- Further research into sonosensitizer optimization and multimodal approaches is crucial for clinical translation.
- SDT offers a more effective alternative to photodynamic therapy for deep-seated cancers.
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