Activation of Metal Complexes With Ultrasound Waves for Targeted Anticancer Therapy

Ultrasound technology has undergone a fundamental paradigm shift, evolving from a conventional diagnostic instrument into a sophisticated platform for non-invasive, site-specific cancer therapy. By harnessing the inverse piezoelectric effect, ultrasound generates mechanical waves that trigger acoustic cavitation in liquid media, producing localized hotspots of extreme temperature and pressure that can be exploited to activate rationally designed metal complexes through distinct and complementary mechanisms. This review provides a comprehensive analysis of two primary therapeutic modalities enabled by this approach. In sonodynamic therapy, metal centers function as sonosensitizers, generating cytotoxic reactive oxygen species through sonoluminescence-mediated energy transfer. In ultrasound-induced ligand release, the mechanochemical potential of metallocenes and coordination polymers is exploited, whereby cavitation-induced shear forces drive heterolytic metal-ligand bond scission to achieve spatially controlled release of bioactive payloads and catalysts. A defining advantage of this platform over light-based therapeutic modalities is its capacity to reach deep-seated tumors. By synthesizing current structure-activity relationships and mechanistic understanding, this review establishes a rational design roadmap for next-generation smart metal-based prodrugs and delineates the critical challenges, including acoustic parameter standardization, long-term metal fragment toxicology, and translational modeling fidelity, that must be addressed to advance this emerging field toward clinical application.

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Publication Details

Journal
Angewandte Chemie International Edition
Published
2026-09-14
DOI
https://doi.org/10.1002/anie.3172220
Primary Topic
Nanoplatforms for cancer theranostics
Type
article
Field-Weighted Citation Impact
0.00

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article

Activation of Metal Complexes With Ultrasound Waves for Targeted Anticancer Therapy

Nicolás Montesdeoca, Johannes Karges, Félix Grosjean, Gilles Berger
Angewandte Chemie International Edition
Nanoplatforms for cancer theranostics
article

Activation of Metal Complexes With Ultrasound Waves for Targeted Anticancer Therapy

Nicolás Montesdeoca, Johannes Karges, Félix Grosjean, Gilles Berger
article en

Abstract

Ultrasound technology has undergone a fundamental paradigm shift, evolving from a conventional diagnostic instrument into a sophisticated platform for non-invasive, site-specific cancer therapy. By harnessing the inverse piezoelectric effect, ultrasound generates mechanical waves that trigger acoustic cavitation in liquid media, producing localized hotspots of extreme temperature and pressure that can be exploited to activate rationally designed metal complexes through distinct and complementary mechanisms. This review provides a comprehensive analysis of two primary therapeutic modalities enabled by this approach. In sonodynamic therapy, metal centers function as sonosensitizers, generating cytotoxic reactive oxygen species through sonoluminescence-mediated energy transfer. In ultrasound-induced ligand release, the mechanochemical potential of metallocenes and coordination polymers is exploited, whereby cavitation-induced shear forces drive heterolytic metal-ligand bond scission to achieve spatially controlled release of bioactive payloads and catalysts. A defining advantage of this platform over light-based therapeutic modalities is its capacity to reach deep-seated tumors. By synthesizing current structure-activity relationships and mechanistic understanding, this review establishes a rational design roadmap for next-generation smart metal-based prodrugs and delineates the critical challenges, including acoustic parameter standardization, long-term metal fragment toxicology, and translational modeling fidelity, that must be addressed to advance this emerging field toward clinical application.

Angewandte Chemie International Edition
Université Libre de Bruxelles (BE), Ruhr University Bochum (DE)
Verband der Chemischen Industrie, Fonds der Chemischen Industrie, Else Kröner-Fresenius-Stiftung, Aventis Foundation
Openalex Percentile: Top 21%
Nanoplatforms for cancer theranostics
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