Imaging-guided bioresorbable acoustic hydrogel microrobots

IF 26.1 1区 计算机科学 Q1 ROBOTICS Science Robotics Pub Date : 2024-12-11 DOI:10.1126/scirobotics.adp3593
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, Payal N. Patel, Claire L. Hays, Peter J. 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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Abstract

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.
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成像引导生物可吸收声学水凝胶微型机器人
微型和纳米机器人擅长于在人体复杂且通常难以接近的区域导航,为疾病诊断、精确药物输送、解毒和微创手术等应用提供了巨大的潜力。尽管前景光明,但实际部署面临障碍,包括在复杂的体内生物环境中实现稳定推进,通过深层组织进行实时成像和定位,以及精确远程控制靶向治疗并确保高治疗效果。为了克服这些障碍,我们引入了一种基于水凝胶的、成像引导的、生物可吸收的声学微型机器人(BAM),旨在以高稳定性在人体中导航。BAM采用双光子聚合构建,由磁性纳米颗粒和治疗剂集成到其水凝胶基质中,用于精确控制和药物输送。该微型机器人具有优化的表面化学特性,具有疏水内层,可大大提高微泡在具有多日功能的生物流体中的保留率,并且具有亲水性外层,可最大限度地减少聚集并促进及时降解。双开口气泡捕获腔的设计使BAM能够在一系列生物流体中保持一致和有效的声学推进。在聚焦超声刺激下,被捕获的微泡振荡,增强了实时超声成像的对比度,便于通过无线磁导航精确跟踪和控制BAM的运动。此外,BAMs的水解生物降解性确保了其在处理后的安全溶解,不存在长期残留危害的风险。彻底的体外和体内实验证据证明了BAMs在生物医学应用中的前景。这种方法为推进微创医疗干预和靶向治疗提供了希望。
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来源期刊
Science Robotics
Science Robotics Mathematics-Control and Optimization
CiteScore
30.60
自引率
2.80%
发文量
83
期刊介绍: Science Robotics publishes original, peer-reviewed, science- or engineering-based research articles that advance the field of robotics. The journal also features editor-commissioned Reviews. An international team of academic editors holds Science Robotics articles to the same high-quality standard that is the hallmark of the Science family of journals. Sub-topics include: actuators, advanced materials, artificial Intelligence, autonomous vehicles, bio-inspired design, exoskeletons, fabrication, field robotics, human-robot interaction, humanoids, industrial robotics, kinematics, machine learning, material science, medical technology, motion planning and control, micro- and nano-robotics, multi-robot control, sensors, service robotics, social and ethical issues, soft robotics, and space, planetary and undersea exploration.
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