Imaging-guided bioresorbable acoustic hydrogel microrobots

Микророботы на основе биорезорбируемого акустического гидрогеля с визуализационным наведением
Hong Han, Xiaotian Ma, Weiting Deng, Junhang Zhang, Songsong Tang, On Shun Pak, Lailai Zhu, Ernesto Criado-Hidalgo, Chen Gong, Emil Karshalev, Jounghyun Yoo, Ming You, Ann Liu, Canran Wang, Hao K. Shen, P. Patel, Claire Hays, Peter Gunnarson, Lei Li, Yang Zhang, John O. Dabiri, Lihong V. Wang, Mikhail G. Shapiro, Di Wu, Qifa Zhou, Julia R. Greer, Wei Gao
2024-12-11

bioresorbable hydrogelfocused ultrasoundimaging-guided acoustic microrobotstargeted drug deliverywireless magnetic navigation
Micro- and nanorobots excel in navigating the intricate and often inaccessible areas of the human body, offering immense potential for applications such as disease diagnosis, precision drug delivery, detoxification, and minimally invasive surgery. Despite their promise, practical deployment faces hurdles, including achieving stable propulsion in complex in vivo biological environments, real-time imaging and localization through deep tissue, and precise remote control for targeted therapy and ensuring high therapeutic efficacy. To overcome these obstacles, we introduce a hydrogel-based, imaging-guided, bioresorbable acoustic microrobot (BAM) designed to navigate the human body with high stability. Constructed using two-photon polymerization, a BAM comprises magnetic nanoparticles and therapeutic agents integrated into its hydrogel matrix for precision control and drug delivery. The microrobot features an optimized surface chemistry with a hydrophobic inner layer to substantially enhance microbubble retention in biofluids with multiday functionality and a hydrophilic outer layer to minimize aggregation and promote timely degradation. The dual-opening bubble-trapping cavity design enables a BAM to maintain consistent and efficient acoustic propulsion across a range of biological fluids. Under focused ultrasound stimulation, the entrapped microbubbles oscillate and enhance the contrast for real-time ultrasound imaging, facilitating precise tracking and control of BAM movement through wireless magnetic navigation. Moreover, the hydrolysis-driven biodegradability of BAMs ensures its safe dissolution after treatment, posing no risk of long-term residual harm. Thorough in vitro and in vivo experimental evidence demonstrates the promising capabilities of BAMs in biomedical applications. This approach shows promise for advancing minimally invasive medical interventions and targeted therapeutic delivery.
1
A hydrogel-based, imaging-guided, bioresorbable acoustic microrobot was developed for stable navigation and targeted therapy in biological environments.
2
A hydrophobic inner layer improves microbubble retention for multiday operation, while a hydrophilic outer layer reduces aggregation and supports timely degradation.
3
Focused ultrasound drives microbubble oscillation, enhancing ultrasound contrast for real-time tracking and precise movement control.
4
Hydrolysis-driven biodegradation enables safe dissolution after treatment, and in vitro and in vivo experiments support biomedical applicability.
5
The dual-opening bubble-trapping cavity maintains consistent acoustic propulsion across diverse biological fluids.
6
Two-photon-polymerized microrobots integrate magnetic nanoparticles and therapeutic agents within the hydrogel matrix, enabling wireless magnetic control and drug delivery.

imaging-guided bioresorbable acoustic hydrogel microrobots (BAMs) for biomedical navigation and drug delivery

the microrobots’ acoustic propulsion, ultrasound visibility, magnetic navigability, microbubble retention, and hydrolysis-driven biodegradability for targeted therapy

Publication Details
Publication Date
2024-12-11
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Authors
Hong Han
Xiaotian Ma
Weiting Deng
Junhang Zhang
Songsong Tang
On Shun Pak
Lailai Zhu
Ernesto Criado-Hidalgo
Chen Gong
Emil Karshalev
Jounghyun Yoo
Ming You
Ann Liu
Canran Wang
Hao K. Shen
P. Patel
Claire Hays
Peter Gunnarson
Lei Li
Yang Zhang
John O. Dabiri
Lihong V. Wang
Mikhail G. Shapiro
Di Wu
Qifa Zhou
Julia R. Greer
Wei Gao
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