首页> 美国卫生研究院文献>Biomicrofluidics >Swimming microorganisms acting as nanorobots versus artificial nanorobotic agents: A perspective view from an historical retrospective on the future of medical nanorobotics in the largest known three-dimensional biomicrofluidic networks
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Swimming microorganisms acting as nanorobots versus artificial nanorobotic agents: A perspective view from an historical retrospective on the future of medical nanorobotics in the largest known three-dimensional biomicrofluidic networks

机译:充当纳米机器人与人工纳米机器人试剂的游泳微生物:历史回顾的透视图涉及最大已知的三维生物微流体网络中医学纳米机器人的未来

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摘要

The vascular system in each human can be described as a 3D biomicrofluidic network providing a pathway close to approximately 100 000 km in length. Such network can be exploited to target any parts inside the human body with further accessibility through physiological spaces such as the interstitial microenvironments. This fact has triggered research initiatives towards the development of new medical tools in the form of microscopic robotic agents designed for surgical, therapeutic, imaging, or diagnostic applications. To push the technology further towards medical applications, nanotechnology including nanomedicine has been integrated with principles of robotics. This new field of research is known as medical nanorobotics. It has been particularly creative in recent years to make what was and often still considered science-fiction to offer concrete implementations with the potential to enhance significantly many actual medical practices. In such a global effort, two main strategic trends have emerged where artificial and synthetic implementations presently compete with swimming microorganisms being harnessed to act as medical nanorobotic agents. Recognizing the potentials of each approach, efforts to combine both towards the implementation of hybrid nanorobotic agents where functionalities are implemented using both artificial/synthetic and microorganism-based entities have also been initiated. Here, through the main eras of progressive developments in this field, the evolutionary path being described from some of the main historical achievements to recent technological innovations is extrapolated in an attempt to provide a perspective view on the future of medical nanorobotics capable of targeting any parts of the human body accessible through the vascular network.
机译:每个人的血管系统都可以描述为3D生物微流体网络,提供的路径长度接近100 000 km。通过诸如间隙微环境之类的生理空间,可以进一步利用这种网络来利用人体的任何部位。这一事实引发了针对新型医疗工具的研究计划,这些医疗工具的形式是为手术,治疗,成像或诊断应用而设计的微型机器人试剂。为了将技术进一步推向医疗应用,包括纳米医学在内的纳米技术已经与机器人学原理相结合。这个新的研究领域被称为医学纳米机器人。近年来,做出曾经且通常仍被认为是科幻小说来提供具体实现方案,并有可能显着增强许多实际医学实践的潜力,尤其具有创造力。在这样的全球努力下,出现了两个主要的战略趋势,在这些趋势中,目前人工和合成装置与被用作医学纳米机器人制剂的游泳微生物竞争。认识到每种方法的潜力,已经开始努力将两种方法结合起来,以实现使用人工/合成和基于微生物的实体来实现功能的混合纳米机器人试剂。在此,通过该领域逐步发展的主要时代,从某些主要历史成就到最新技术创新的进化路径被推断出来,以期为能够靶向任何部位的医学纳米机器人的未来提供一个透视图。通过血管网络可进入人体的一部分。

著录项

  • 期刊名称 Biomicrofluidics
  • 作者

    Sylvain Martel;

  • 作者单位
  • 年(卷),期 2016(10),2
  • 年度 2016
  • 页码 021301
  • 总页数 19
  • 原文格式 PDF
  • 正文语种
  • 中图分类 生物物理学;
  • 关键词

  • 入库时间 2022-08-17 14:52:32

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