软胶囊滚动微型机器人的多模态成像、药物传递和机载触发降解

IF 6.1 Q1 AUTOMATION & CONTROL SYSTEMS Advanced intelligent systems (Weinheim an der Bergstrasse, Germany) Pub Date : 2024-09-04 DOI:10.1002/aisy.202400230
David Castellanos-Robles, Raphaël C. L.-M. Doineau, Azaam Aziz, Richard Nauber, Song Wu, Silvia Moreno, Konstantina Mitropoulou, Franziska Hebenstreit, Mariana Medina-Sánchez
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引用次数: 0

摘要

在快速发展的医疗微型机器人领域,设计能够应对各种挑战的机器人——如成像、生物降解和多功能——是至关重要的。传统的研究往往侧重于微机器人功能的孤立方面,本研究提出了一种创新的方法来综合设计微机器人。软胶囊微型机器人集成了磁导航、自主机动性、原位生物降解、生物安全成像和药物递送等能力。这些微机器人的制造范围在20-120 μm之间,具有每秒≈102-103个微机器人的显著吞吐量。此外,在采用实时光学闭环控制的情况下,它们的运动性能已被证明在超过10小时的时间内保持稳定。超声造影剂的掺入不仅可以提高成像分辨率,还可以确保在生物环境中超过3小时的成像对比度稳定性。其次,装载酶的纳米聚合体的有意整合建立了一个独立的、可生物降解的系统,增强了微型机器人在不添加高浓度酶的情况下降解的能力。这种综合方法为个性化和靶向治疗的微创治疗奠定了基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Multimodal Imaging, Drug Delivery, and On-Board Triggered Degradation in Soft Capsule Rolling Microrobots

In the rapidly advancing field of medical microrobotics, designing robots capable of addressing various challenges—such as imaging, biodegradation, and multifunctionality—is crucial. Departing from conventional research that often focuses on isolated aspects of microrobot functionality, this study presents an innovative approach to comprehensive microrobot design. Soft capsule microrobots that integrate capabilities such as magnetic navigation, autonomous maneuverability, in situ biodegradation, biosafe imaging, and drug delivery are reported. These microrobots are fabricated within the range of 20–120 μm, with a notable throughput of ≈102–103 microrobots per second. Furthermore, their locomotion performance has been demonstrated to remain stable for a period exceeding 10 h, all while employing real-time optical closed-loop control. The incorporation of ultrasound contrast agents not only amplifies imaging resolution but also ensures imaging contrast stability in a biological environment for over a period of 3 h. Second, the intentional integration of enzyme-loaded nanometric polymersomes establishes a self-contained, biodegradable system, accentuating the microrobots’ capacity to degrade without the addition of high enzyme concentrations. This integrated approach lays the groundwork for minimally invasive treatments toward personalized and targeted medicine.

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1.30
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4 weeks
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