Physical Intelligence Department, Max Planck Institute for Intelligent Systems , Stuttgart , Germany.
Department of Chemical and Product Safety, German Federal Institute for Risk Assessment (BfR) , Berlin , Germany.
Expert Opin Drug Deliv. 2019 Nov;16(11):1259-1275. doi: 10.1080/17425247.2019.1676228. Epub 2019 Oct 14.
: There is growing emphasis on the development of bioinspired and biohybrid micro/nanorobots for the targeted drug delivery (TDD). Particularly, stimuli-responsive materials and magnetically triggered systems, identified as the most promising materials and design paradigms. Despite the advances made in fabrication and control, there remains a significant gap in clinical translation. : This review discusses the opportunities and challenges about micro/nanorobotics for the TDD as evolutionary evidence in bio-nanotechnology, material science, biohybrid robotics, and many more. Important consideration in context with the material's compatibility/immunogenicity, ethics, and security risk are reported based on the development in artificial intelligence (AI)/machine learning described in literature. The versatility and sophistication of biohybrid components design are being presented, highlighting stimuli-responsive biosystems as smart mechanisms and on-board sensing and control elements. : Focusing on key issues for high controllability at micro- and nano-scale systems in TDD, biohybrid integration strategies, and bioinspired key competences shall be adopted. The promising outlook portraying the commercialization potential and economic viability of micro/nanorobotics will benefit to clinical translation.
: 人们越来越重视开发仿生和生物混合微/纳米机器人用于靶向药物输送 (TDD)。特别是,刺激响应材料和磁触发系统被认为是最有前途的材料和设计范例。尽管在制造和控制方面取得了进展,但在临床转化方面仍存在重大差距。: 本综述讨论了微/纳米机器人在 TDD 中的机遇和挑战,将其作为生物纳米技术、材料科学、生物混合机器人等领域的进化证据。根据文献中描述的人工智能 (AI)/机器学习的发展,报告了与材料兼容性/免疫原性、伦理学和安全风险相关的重要考虑因素。正在展示生物混合组件设计的多功能性和复杂性,突出刺激响应生物系统作为智能机制和机载传感和控制元件。: 重点关注 TDD 中微纳米系统高可控性的关键问题,采用生物混合集成策略和仿生关键能力。描绘微/纳米机器人商业化潜力和经济可行性的有希望的前景将有利于临床转化。