Ultrasound-activatable bacteria for biomedical applications

Bacteria have emerged as powerful therapeutic vectors owing to their intrinsic tumour tropism, genetic programmability, and living therapeutic functions. However, the trade-off between their autonomous proliferation and potential immunotoxicity restricts their clinical translation. Integrating ultrasound (US), a non-invasive physical trigger providing deep tissue penetration and high spatiotemporal precision, presents a potential solution to this dilemma. Acoustic actuation can safely bridge this gap by confining bacterial activity to pathological sites, thereby expanding the therapeutic window. Here, we summarize the fundamental biological mechanisms underlying US-bacteria interactions, including mechanical, thermal, and chemical effects. Building upon these principles, we detail emerging engineering strategies that confer US responsiveness to bacteria, such as surface functionalization, gas vesicle engineering, and sonogenetic regulation. Subsequently, we highlight recent advances in US-responsive bacterial systems across diverse applications, including biomedical imaging, targeted drug delivery, and microenvironment reprogramming. Finally, we discuss the key challenges that hinder clinical translation and propose future research directions. Overall, this review highlights the significant potential of integrating engineered bacteria with US technologies and provides a roadmap for next-generation precision diagnostics and therapeutics.

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Publication Details

Journal
Materials Today
Published
2026-09-25
DOI
https://doi.org/10.1016/j.mattod.2026.103520
Primary Topic
Ultrasound and Cavitation Phenomena
Type
article
Field-Weighted Citation Impact
0.00

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article

Ultrasound-activatable bacteria for biomedical applications

Yandi Tan, Xiaoyuan Shawn Chen, Kaiyuan Wang, Qing You et al.
Materials Today
Ultrasound and Cavitation Phenomena
article

Ultrasound-activatable bacteria for biomedical applications

Yandi Tan, Xiaoyuan Shawn Chen, Kaiyuan Wang, Qing You, X W Cui, Gege Wu, Qiong Wang, Qiuyu Cheng, Tong Xu, Lingwen Ding, Zhou Zhou, Heng Sun
article en

Abstract

Bacteria have emerged as powerful therapeutic vectors owing to their intrinsic tumour tropism, genetic programmability, and living therapeutic functions. However, the trade-off between their autonomous proliferation and potential immunotoxicity restricts their clinical translation. Integrating ultrasound (US), a non-invasive physical trigger providing deep tissue penetration and high spatiotemporal precision, presents a potential solution to this dilemma. Acoustic actuation can safely bridge this gap by confining bacterial activity to pathological sites, thereby expanding the therapeutic window. Here, we summarize the fundamental biological mechanisms underlying US-bacteria interactions, including mechanical, thermal, and chemical effects. Building upon these principles, we detail emerging engineering strategies that confer US responsiveness to bacteria, such as surface functionalization, gas vesicle engineering, and sonogenetic regulation. Subsequently, we highlight recent advances in US-responsive bacterial systems across diverse applications, including biomedical imaging, targeted drug delivery, and microenvironment reprogramming. Finally, we discuss the key challenges that hinder clinical translation and propose future research directions. Overall, this review highlights the significant potential of integrating engineered bacteria with US technologies and provides a roadmap for next-generation precision diagnostics and therapeutics.

Materials TodayVol. 100
Shenyang Pharmaceutical University (CN), National University of Singapore (SG), Shandong Tumor Hospital (CN), Shandong First Medical University (CN), Huazhong University of Science and Technology (CN)
Shandong First Medical University
Openalex Percentile: Top 26%
Ultrasound and Cavitation Phenomena
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