2D Nano‐Sonosensitizers Facilitate Energy Transfer to Enhance Sonodynamic Therapy

Author:

Lin Gan12,Nash Geoffrey T.1,Luo Taokun1,Ghosh Indranil1,Sohoni Siddhartha1,Christofferson Andrew J.3,Liu Gang2,Engel Gregory S.14,Lin Wenbin15ORCID

Affiliation:

1. Department of Chemistry The University of Chicago Chicago IL 60637 USA

2. State Key Laboratory of Molecular Vaccinology and Molecular Diagnostics & Center for Molecular Imaging and Translational Medicine School of Public Health Xiamen University Xiamen 361102 China

3. School of Science College of Science, Engineering and Health RMIT University Melbourne Victoria 3001 Australia

4. Pritzker School of Molecular Engineering The University of Chicago Chicago IL 60637 USA

5. Department of Radiation and Cellular Oncology and Ludwig Center for Metastasis Research The University of Chicago Chicago IL 60637 USA

Abstract

AbstractAlthough sonodynamic therapy (SDT) has shown promise for cancer treatment, the lack of efficient sonosensitizers (SSs) has limited the clinical application of SDT. Here, a new strategy is reported for designing efficient nano‐sonosensitizers based on 2D nanoscale metal–organic layers (MOLs). Composed of Hf‐oxo secondary building units (SBUs) and iridium‐based linkers, the MOL is anchored with 5,10,15,20‐tetra(p‐benzoato)porphyrin (TBP) sensitizers on the SBUs to afford TBP@MOL. TBP@MOL shows 14.1‐ and 7.4‐fold higher singlet oxygen (1O2) generation than free TBP ligands and Hf‐TBP, a 3D nanoscale metal–organic framework, respectively. The 1O2 generation of TBP@MOL is enhanced by isolating TBP SSs on the SBUs of the MOL, which prevents aggregation‐induced quenching of the excited sensitizers, and by triplet–triplet Dexter energy transfer between excited iridium‐based linkers and TBP SSs, which more efficiently harnesses broad‐spectrum sonoluminescence. Anchoring TBP on the MOL surface also enhances the energy transfer between the excited sensitizer and ground‐state triplet oxygen to increase 1O2 generation efficacy. In mouse models of colorectal and breast cancer, TBP@MOL demonstrates significantly higher SDT efficacy than Hf‐TBP and TBP. This work uncovers a new strategy to design effective nano‐sonosensitizers by facilitating energy transfer to efficiently capture broad‐spectrum sonoluminescence and enhance 1O2 generation.

Funder

National Science Foundation

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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