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Published on: December 15, 2010
Ultrasound-Activated Prodrugs for Precision Cancer Therapy: From Mechanical and Cavitation Effects to Advanced
Xitong Ren1,2, Hui Zhang3, Jingxuan Zhang4
1State Key Laboratory of Polymer Science and Technology, Changchun Institute of Applied Chemistry, Chinese Academy of Sciences, Changchun, Jilin 130022, China.
Abstract:
Small-molecule drugs remain the mainstay of cancer therapy but are frequently compromised by poor tumor selectivity and dose-limiting systemic toxicity. Prodrug strategies have therefore been widely developed to improve therapeutic indices; however, conventional prodrugs that rely on endogenous biological stimuli often suffer from interpatient heterogeneity and unintended off-target activation. In this context, ultrasound (US) has emerged as a highly attractive exogenous trigger for on-demand prodrug activation owing to its excellent safety profile, deep tissue penetration, and precise spatiotemporal controllability. In this review, we provide a comprehensive and systematic overview of US-activated prodrugs for cancer therapy. We first summarize the fundamental physical principles of US and delineate four major US-induced effectsmechanical, cavitation, thermal, and chemicalhighlighting how each effect can induce specific chemical bond cleavage and drug release. Particular emphasis is placed on the rapidly advancing field of sonochemistry, especially sonosensitizer-mediated electron transfer and reactive oxygen species/radical generation, which enables highly efficient and controllable chemical activation of prodrugs under clinically relevant US conditions. By critically comparing activation mechanisms, chemical design strategies, and representative prodrug systems, this review clarifies the unique advantages and limitations of different US-responsive approaches. Importantly, we highlight recent advances that demonstrate the superiority of sonochemical activation in achieving precise, deep-tissue, and minimally invasive drug activation. Collectively, this work aims to provide conceptual and practical guidance for the rational design of next-generation US-activated prodrugs and to accelerate their translation toward safer and more effective precision cancer therapies.
Insights
Ultrasound (US) offers precise, on-demand cancer prodrug activation, overcoming limitations of traditional methods. Sonochemistry enables efficient, targeted drug release for safer, more effective cancer therapies.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Oncology
Background:
- Small-molecule cancer drugs face challenges with tumor selectivity and systemic toxicity.
- Conventional prodrugs activated by biological triggers show interpatient variability and off-target effects.
Purpose of the Study:
- To provide a comprehensive overview of ultrasound (US)-activated prodrugs for cancer therapy.
- To highlight the advantages of US-triggered activation, particularly sonochemistry, for precision drug delivery.
Main Methods:
- Summarized physical principles of US and its four major induced effects (mechanical, cavitation, thermal, chemical).
- Emphasized sonochemistry, including sonosensitizer-mediated electron transfer and reactive oxygen species generation.
- Critically compared US-responsive activation mechanisms, chemical designs, and prodrug systems.
Main Results:
- US offers precise spatiotemporal control for on-demand prodrug activation.
- Sonochemical activation demonstrates superiority for deep-tissue, minimally invasive drug release.
- US-activated prodrugs present a safer alternative to conventional therapies with improved therapeutic indices.
Conclusions:
- US-activated prodrugs, especially via sonochemistry, offer significant advantages for targeted cancer therapy.
- Rational design of next-generation US-responsive prodrugs can accelerate clinical translation.
- This approach promises safer and more effective precision cancer treatments.
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