无约束医疗微型机器人的转化前景

IF 5 Q1 ENGINEERING, BIOMEDICAL Progress in biomedical engineering (Bristol, England) Pub Date : 2019-07-16 DOI:10.1088/2516-1091/ab22d5
H. Ceylan, I. Yasa, Ugur Kilic, Wenqi Hu, M. Sitti
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引用次数: 104

摘要

不受束缚的移动微型机器人有可能从根本上改变医学。它们的小尺寸和无线移动性可以在受限的、小的、难以到达的和敏感的身体内部部位进行访问和导航,在那里它们可以提供新的微创干预方法和靶向诊断和治疗,精确到细胞长度尺度,具有高精度和可重复性。最近该领域在临床前水平的指数级进展提高了对其近期临床前景的预期。然而,为了为这种转变铺平道路,以前提出的微型机器人系统设计需要全面的审查,包括微型机器人需要在特定的医疗问题的体内条件下正确和安全地工作的基本方面。本文综述了以应用为导向的综合设计方法在医学微型机器人研究中的应用前景。医疗微型机器人的蓝图需要同时考虑微型机器人的外形、材料组成、制造技术、生物屏障的渗透、部署策略、驱动和控制方法、医学成像方式以及执行规定的医疗任务。微型机器人物理设计中每个此类元素的功能信息的整合高度依赖于特定的临床应用场景。我们讨论了未来挑战的复杂性以及克服这些挑战的潜在方向。我们还阐明了医疗微型机器人从台式到床边的潜在监管方面。这样一项多方面的工作需要工程师、材料科学家、生物学家和医生的多学科参与,并将他们的重点放在微型机器人可能产生破坏性或根本性影响的特定医疗问题上。
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Translational prospects of untethered medical microrobots
Untethered mobile microrobots have the potential to transform medicine radically. Their small size and wireless mobility can enable access to and navigation in confined, small, hard-to-reach, and sensitive inner body sites, where they can provide new ways of minimally invasive interventions and targeted diagnosis and therapy down to the cellular length scales with high precision and repeatability. The exponential recent progress of the field at the preclinical level raises anticipations for their near-future clinical prospects. To pave the way for this transformation to happen, however, the formerly proposed microrobotic system designs need a comprehensive review by including essential aspects that a microrobot needs to function properly and safely in given in vivo conditions of a targeted medical problem. The present review provides a translational perspective on medical microrobotics research with an application-oriented, integrative design approach. The blueprint of a medical microrobot needs to take account of microrobot shape, material composition, manufacturing technique, permeation of biological barriers, deployment strategy, actuation and control methods, medical imaging modality, and the execution of the prescribed medical tasks altogether at the same time. The incorporation of functional information pertaining each such element to the physical design of the microrobot is highly dependent on the specific clinical application scenario. We discuss the complexity of the challenges ahead and the potential directions to overcome them. We also throw light on the potential regulatory aspects of medical microrobots toward their bench-to-bedside translation. Such a multifaceted undertaking entails multidisciplinary involvement of engineers, materials scientists, biologists and medical doctors, and bringing their focus on specific medical problems where microrobots could make a disruptive or radical impact.
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