无系绳、载酶、软磁微型机器人的肾结石溶解。

IF 10 2区 医学 Q1 ENGINEERING, BIOMEDICAL
Afarin Khabbazian, Lauren Kwong, Aaron Lewis, Erica Liu, Noura Abdelrazec, Anna C Bakenecker, Nil Fontanals, Guillem Lopez, Samuel Sánchez, Juan Manuel Lopez, Brian Carrillo, Monica Farcas, Chris Kallweit, Alfred C H Yu, Mir Behrad Khamesee, Veronika Magdanz
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引用次数: 0

摘要

肾结石是最常见的泌尿系统疾病之一,影响着12%的人口。这种疾病的高患病率和复发率促使开发更有针对性和更有效的治疗方法,副作用更小,侵入性更小,避免复发和延长药物给药时间。特别是对于复发性结石患者,目前的持续药物治疗和反复手术取石的方法不能令人满意,给患者和医疗系统带来了巨大的负担。由于这些原因,迫切需要一种通过主动无线传输在疾病部位提供药物给药的递送策略,以改善尿路疾病的治疗。提出了一种无线治疗肾结石的方法,该方法采用了柔性的、磁性的、酶活性的机器人。这些机器人被设计成在尿路中导航,并通过嵌入的脲酶的作用局部溶解结石。机器人由毫米大小的明胶聚合物条制成,嵌入微磁铁和封装脲酶,脲酶不断转化尿素以增加尿液ph值。这项研究展示了增强的结石溶解和机器人通过3D打印人类尿路模型不同部分的磁性导航。临床超声系统允许机器人的实时定位。本研究提出了一种侵入性更小、更有针对性的尿路医疗干预策略,在尿酸性肾结石的情况下,有可能避免手术,这在肾结石高患病率和复发率的情况下尤其相关。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Kidney Stone Dissolution By Tetherless, Enzyme-Loaded, Soft Magnetic Miniature Robots.

Kidney stones are some of the most common urinary diseases, affecting 12% of the population. The high prevalence and recurrence of this disease urges the development of more targeted and effective treatment with lower side effects and less invasiveness avoiding recurrence and prolonged drug administration. Particularly for recurring stone formers, the current methods of persistent drug treatment and repetitive surgeries for stone removal are unsatisfying solutions that bring a huge burden to the patients and healthcare systems. For these reasons, a delivery strategy that provides drug administration at the disease site through active, wireless transport is urgently needed to improve urinary tract disease treatment. A wireless treatment of kidney stones is proposed with the help of flexible, magnetically steered, enzymatically active robots. These robots are designed to navigate in the urinary tract and locally dissolve the stones by action of embedded urease. The robots are made of millimeter-sized, gelatin-based polymer strips with embedded micromagnets and encapsulated urease which constantly converts urea to increase urinary pH. This study demonstrates enhanced stone dissolution and the robots' magnetic navigation through the different parts of a 3D printed human urinary tract model. A clinical ultrasound system allows real-time localization of the robots. This research proposes a less invasive and more targeted strategy for medical interventions in the urinary tract with potential to circumvent surgery in case of uric acid kidney stones, which is relevant especially in the light of high prevalence and recurrence of kidney stones.

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来源期刊
Advanced Healthcare Materials
Advanced Healthcare Materials 工程技术-生物材料
CiteScore
14.40
自引率
3.00%
发文量
600
审稿时长
1.8 months
期刊介绍: Advanced Healthcare Materials, a distinguished member of the esteemed Advanced portfolio, has been dedicated to disseminating cutting-edge research on materials, devices, and technologies for enhancing human well-being for over ten years. As a comprehensive journal, it encompasses a wide range of disciplines such as biomaterials, biointerfaces, nanomedicine and nanotechnology, tissue engineering, and regenerative medicine.
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