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自推进混合微/纳米机器人的生物工程应用设计策略。

Strategies in design of self-propelling hybrid micro/nanobots for bioengineering applications.

机构信息

Department of Applied Sciences, Indian Institute of Information Technology, Allahabad, UP, India.

Department of Biotechnology, Heritage Institute of Technology, Kolkata, West Bengal, India.

出版信息

Biomed Mater. 2023 Oct 3;18(6). doi: 10.1088/1748-605X/acf975.

DOI:10.1088/1748-605X/acf975
PMID:37703889
Abstract

Micro/nanobots are integrated devices developed from engineered nanomaterials that have evolved significantly over the past decades. They can potentially be pre-programmed to operate robustly at numerous hard-to-reach organ/tissues/cellular sites for multiple bioengineering applications such as early disease diagnosis, precision surgeries, targeted drug delivery, cancer therapeutics, bio-imaging, biomolecules isolation, detoxification, bio-sensing, and clearing up clogged arteries with high soaring effectiveness and minimal exhaustion of power. Several techniques have been introduced in recent years to develop programmable, biocompatible, and energy-efficient micro/nanobots. Therefore, the primary focus of most of these techniques is to develop hybrid micro/nanobots that are an optimized combination of purely synthetic or biodegradable bots suitable for the execution of user-defined tasks more precisely and efficiently. Recent progress has been illustrated here as an overview of a few of the achievable construction principles to be used to make biomedical micro/nanobots and explores the pivotal ventures of nanotechnology-moderated development of catalytic autonomous bots. Furthermore, it is also foregrounding their advancement offering an insight into the recent trends and subsequent prospects, opportunities, and challenges involved in the accomplishments of the effective multifarious bioengineering applications.

摘要

微/纳米机器人是由工程纳米材料开发的集成设备,在过去几十年中取得了重大进展。它们可以预先编程,在许多难以到达的器官/组织/细胞部位进行稳健操作,用于多种生物工程应用,如早期疾病诊断、精准手术、靶向药物输送、癌症治疗、生物成像、生物分子分离、解毒、生物传感以及高效清除堵塞的动脉,而不会耗尽大量能量。近年来已经引入了几种技术来开发可编程、生物兼容和节能的微/纳米机器人。因此,这些技术中的大多数主要关注的是开发混合微/纳米机器人,这是纯合成或可生物降解机器人的优化组合,适合更精确和高效地执行用户定义的任务。最近的进展在这里被概述为对一些可用于制造生物医学微/纳米机器人的可实现构建原则的概述,并探讨了纳米技术介导的催化自主机器人开发的关键风险投资。此外,它还突出了它们的进步,深入了解了在实现有效的多功能生物工程应用中涉及的最新趋势和随后的前景、机遇和挑战。

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